-
1
-
-
84980356583
-
-
CISCO, White Paper. [Online]
-
CISCO, "The Internet of Things reference model," White Paper," 2014. [Online]. Available: http://cdn.iotwf.com/resources/71/IoT-Reference-Model-White-Paper-June-4-2014.pdf
-
(2014)
The Internet of Things Reference Model
-
-
-
2
-
-
85045752338
-
-
Intel. [Online]
-
Intel. (2017). The Internet of Things Starts With Intel Inside. [Online]. Available: https://www.intel.com/content/www/us/en/internet-of-things/overview.html?cv=1&session-id=a72c71a6dead059d17510ab183b548c4
-
(2017)
The Internet of Things Starts with Intel Inside
-
-
-
3
-
-
85007452317
-
Green industrial Internet of Things architecture: An energy-efficient perspective
-
Dec
-
K. Wang, Y. Wang, Y. Sun, S. Guo, and J. Wu, "Green industrial Internet of Things architecture: An energy-efficient perspective," IEEE Commun. Mag., vol. 54, no. 12, pp. 48-54, Dec. 2016.
-
(2016)
IEEE Commun. Mag.
, vol.54
, Issue.12
, pp. 48-54
-
-
Wang, K.1
Wang, Y.2
Sun, Y.3
Guo, S.4
Wu, J.5
-
4
-
-
84906811244
-
Powering the internet of things
-
Aug
-
H. Jayakumar, K. Lee, W. S. Lee, A. Raha, Y. Kim, and V. Raghunathan, "Powering the Internet of Things," in Proc. Int. Symp. Low Power Electron. Design, Aug. 2014, pp. 375-380.
-
(2014)
Proc. Int. Symp. Low Power Electron. Design
, pp. 375-380
-
-
Jayakumar, H.1
Lee, K.2
Lee, W.S.3
Raha, A.4
Kim, Y.5
Raghunathan, V.6
-
5
-
-
84923808021
-
Energy replenishment using renewable and traditional energy resources for sustainable wireless sensor networks: A review
-
May. [Online]
-
F. Akhtar and M. H. Rehmani, "Energy replenishment using renewable and traditional energy resources for sustainable wireless sensor networks: A review," Renew. Sustain. Energy Rev., vol. 45, pp. 769-784, May 2014. [Online]. Available: http://www.sciencedirect.com/science/article/pii/S1364032115001094
-
(2014)
Renew. Sustain. Energy Rev.
, vol.45
, pp. 769-784
-
-
Akhtar, F.1
Rehmani, M.H.2
-
6
-
-
85018764115
-
Energy harvesting for self-sustainable wireless body area networks
-
Mar./Apr
-
F. Akhtar and M. H. Rehmani, "Energy harvesting for self-sustainable wireless body area networks," IT Prof., vol. 19, no. 2, pp. 32-40, Mar./Apr. 2017.
-
(2017)
IT Prof.
, vol.19
, Issue.2
, pp. 32-40
-
-
Akhtar, F.1
Rehmani, M.H.2
-
7
-
-
50049107934
-
A survey of energy harvesting sources for embedded systems
-
Apr
-
S. Chalasani and J. M. Conrad, "A survey of energy harvesting sources for embedded systems," in Proc. IEEE SoutheastCon, Apr. 2008, pp. 442-447.
-
(2008)
Proc. IEEE SoutheastCon
, pp. 442-447
-
-
Chalasani, S.1
Conrad, J.M.2
-
8
-
-
80053137160
-
Potential ambient energy-harvesting sources and techniques
-
Y. Faruk "Potential ambient energy-harvesting sources and techniques," J. Technol. Stud., vol. 35, no. 1, pp. 40-48, 2009.
-
(2009)
J. Technol. Stud.
, vol.35
, Issue.1
, pp. 40-48
-
-
Faruk, Y.1
-
9
-
-
85044504633
-
The effects of an adaptive and distributed transmission power control on the performance of energy harvesting sensor networks
-
Jun. [Online]
-
M. Zareei, C. Vargas-Rosales, R. Villalpando-Hernandez, L. Azpilicueta, M. H. Anisi, and M. H. Rehmani, "The effects of an adaptive and distributed transmission power control on the performance of energy harvesting sensor networks," Comput. Netw., vol. 137, pp. 69-82, Jun. 2018. [Online]. Available: http://www.sciencedirect.com/science/article/pii/S1389128618301300
-
(2018)
Comput. Netw.
, vol.137
, pp. 69-82
-
-
Zareei, M.1
Vargas-Rosales, C.2
Villalpando-Hernandez, R.3
Azpilicueta, L.4
Anisi, M.H.5
Rehmani, M.H.6
-
12
-
-
70350769449
-
Wireless sensor networks powered by ambient energy harvesting (WSN-HEAP)-Survey and challenges
-
May
-
W. K. G. Seah, Z. A. Eu, and H.-P. Tan, "Wireless sensor networks powered by ambient energy harvesting (WSN-HEAP)-Survey and challenges," in Proc. 1st IEEE Int. Conf. Wireless Commun., Veh. Technol., Inf. Theory Aerosp. Electron. Syst. Technol., May 2009, pp. 1-5.
-
(2009)
Proc. 1st IEEE Int. Conf. Wireless Commun., Veh. Technol., Inf. Theory Aerosp. Electron. Syst. Technol.
, pp. 1-5
-
-
Seah, W.K.G.1
Eu, Z.A.2
Tan, H.-P.3
-
13
-
-
85052755135
-
An energy conserving and transmission radius adaptive scheme to optimize performance of energy harvesting sensor networks
-
[Online]
-
X. Ju, W. Liu, C. Zhang, A. Liu, T. Wang, N. N. Xiong, and Z. Cai, "An energy conserving and transmission radius adaptive scheme to optimize performance of energy harvesting sensor networks," Sensors, vol. 18, no. 9, p. 2885, 2018. [Online]. Available: http://www.mdpi.com/1424-8220/18/9/2885
-
(2018)
Sensors
, vol.18
, Issue.9
, pp. 2885
-
-
Ju, X.1
Liu, W.2
Zhang, C.3
Liu, A.4
Wang, T.5
Xiong, N.N.6
Cai, Z.7
-
14
-
-
79959289243
-
Energy harvesting sensor nodes: Survey and implications
-
Sep
-
S. Sudevalayam and P. Kulkarni, "Energy harvesting sensor nodes: Survey and implications," IEEE Commun. Surveys Tuts., vol. 13, no. 3, pp. 443-461, Sep. 2011.
-
(2011)
IEEE Commun. Surveys Tuts.
, vol.13
, Issue.3
, pp. 443-461
-
-
Sudevalayam, S.1
Kulkarni, P.2
-
16
-
-
85028298861
-
-
GSMA. [Online]
-
GSMA. (2016). 3GPP Low Power Wide Area Technologies White Paper. [Online]. Available: https://www.gsma.com/iot/wp-content/uploads/2016/10/3GPP-Low-Power-Wide-Area-Technologies-GSMA-White-Paper.pdf
-
(2016)
3GPP Low Power Wide Area Technologies White Paper
-
-
-
17
-
-
85029576412
-
Massive non-orthogonal multiple access for cellular IoT: Potentials and limitations
-
Sep
-
M. Shirvanimoghaddam, M. Dohler, and S. J. Johnson, "Massive non-orthogonal multiple access for cellular IoT: Potentials and limitations," IEEECommun. Mag., vol. 55, no. 9, pp. 55-61, Sep. 2017.
-
(2017)
IEEECommun. Mag.
, vol.55
, Issue.9
, pp. 55-61
-
-
Shirvanimoghaddam, M.1
Dohler, M.2
Johnson, S.J.3
-
18
-
-
84894671595
-
Reincarnation in the ambiance: Devices and networks with energy harvesting
-
1st Quart
-
R. V. Prasad, S. Devasenapathy, V. S. Rao, and J. Vazifehdan, "Reincarnation in the ambiance: Devices and networks with energy harvesting," IEEE Commun. Surveys Tuts., vol. 16, no. 1, pp. 195-213, 1st Quart., 2013.
-
(2013)
IEEE Commun. Surveys Tuts.
, vol.16
, Issue.1
, pp. 195-213
-
-
Prasad, R.V.1
Devasenapathy, S.2
Rao, V.S.3
Vazifehdan, J.4
-
20
-
-
85070226181
-
-
Element14 Community. [Online]
-
Element14 Community. (2015) Why the Internet of Things Needs Energy Harvesting. [Online]. Available: https://www.element14.com/community/groups/internet-of-things/blog/2015/07/28/how-energy-harvesting-can-keep-the-iot-powered-up-and-growing
-
(2015)
Why the Internet of Things Needs Energy Harvesting
-
-
-
21
-
-
85070191049
-
-
Imprint Energy. [Online]
-
Imprint Energy. (2016). Transforming the Battery Landscape. [Online]. Available: http://www.imprintenergy.com/
-
(2016)
Transforming the Battery Landscape
-
-
-
22
-
-
85070218724
-
-
Cymbet. [Online]
-
Cymbet. (2015). Enerchip Smart Solid State Batteries. [Online]. Available: http://www.cymbet.com/products/enerchip-solid-state-batteries.php
-
(2015)
Enerchip Smart Solid State Batteries
-
-
-
23
-
-
84878799158
-
E-WEHP: A batteryless embedded sensor-platform wirelessly powered from ambient digital-TV signals
-
Jun
-
R. J. Vyas, B. B. Cook, Y. Kawahara, and M. M. Tentzeris, "E-WEHP: A batteryless embedded sensor-platform wirelessly powered from ambient digital-TV signals," IEEE Trans. Microw. Theory Techn., vol. 61, no. 6, pp. 2491-2505, Jun. 2013.
-
(2013)
IEEE Trans. Microw. Theory Techn.
, vol.61
, Issue.6
, pp. 2491-2505
-
-
Vyas, R.J.1
Cook, B.B.2
Kawahara, Y.3
Tentzeris, M.M.4
-
24
-
-
85025694082
-
Wireless sensor and communication nodes with energy harvesting
-
M. Safak, "Wireless sensor and communication nodes with energy harvesting," J. Commun., Navigat., Sens. Services, vol. 1, no. 1, pp. 47-66, 2014.
-
(2014)
J. Commun., Navigat., Sens. Services
, vol.1
, Issue.1
, pp. 47-66
-
-
Safak, M.1
-
25
-
-
84933042177
-
Wireless energy harvesting for the Internet of Things
-
Jun
-
P. Kamalinejad, C. Mahapatra, Z. Sheng, S. Mirabbasi, V. C. M. Leung, and Y. L. Guan, "Wireless energy harvesting for the Internet of Things," IEEE Commun. Mag., vol. 53, no. 6, pp. 102-108, Jun. 2015.
-
(2015)
IEEE Commun. Mag.
, vol.53
, Issue.6
, pp. 102-108
-
-
Kamalinejad, P.1
Mahapatra, C.2
Sheng, Z.3
Mirabbasi, S.4
Leung, V.C.M.5
Guan, Y.L.6
-
27
-
-
84924376918
-
Wi-Fi backscatter: Internet connectivity for RF-powered devices
-
B. Kellogg, A. Parks, S. Gollakota, J. R. Smith, and D. Wetherall, "Wi-Fi backscatter: Internet connectivity for RF-powered devices," SIGCOMM Comput.commun. Rev., vol. 44, no. 4, pp. 607-618, 2014.
-
(2014)
SIGCOMM Comput.commun. Rev.
, vol.44
, Issue.4
, pp. 607-618
-
-
Kellogg, B.1
Parks, A.2
Gollakota, S.3
Smith, J.R.4
Wetherall, D.5
-
28
-
-
84886385221
-
A microwave metama-terial with integrated power harvesting functionality
-
A. M. Hawkes, A. R. Katko, and S. A. Cummer, "A microwave metama-terial with integrated power harvesting functionality," Appl. Phys. Lett., vol. 103, no. 16, 2013, Art. no. 163901.
-
(2013)
Appl. Phys. Lett.
, vol.103
, Issue.16
-
-
Hawkes, A.M.1
Katko, A.R.2
Cummer, S.A.3
-
29
-
-
84977097907
-
Acoustic energy harvesting based on a planar acoustic metamaterial
-
S. Qi, M. Oudich, Y. Li, and B. Assouar, "Acoustic energy harvesting based on a planar acoustic metamaterial," Appl. Phys. Lett., vol. 108, no. 26, 2016, Art. no. 263501.
-
(2016)
Appl. Phys. Lett.
, vol.108
, Issue.26
-
-
Qi, S.1
Oudich, M.2
Li, Y.3
Assouar, B.4
-
30
-
-
78751475740
-
-
VTT Tech. Res. Centre Finland, Espoo, Finland, Tech. Rep
-
J. Tervo, A. Manninen, R. Ilola, and H. Hanninen, "State-of-the-art of thermoelectric materials processing," VTT Tech. Res. Centre Finland, Espoo, Finland, Tech. Rep., 2009, pp. 6-7.
-
(2009)
State-of-The-art of Thermoelectric Materials Processing
, pp. 6-7
-
-
Tervo, J.1
Manninen, A.2
Ilola, R.3
Hanninen, H.4
-
31
-
-
77950835316
-
Enhancing thermoelectric performance of ternary nanocrystals through adjusting carrier concentration
-
Y. Zhao, J. S. Dyck, B. M. Hernandez, and C. Burda, "Enhancing thermoelectric performance of ternary nanocrystals through adjusting carrier concentration," J. Amer. Chem. Soc., vol. 132, no. 14, pp. 4982-4983, 2010.
-
(2010)
J. Amer. Chem. Soc.
, vol.132
, Issue.14
, pp. 4982-4983
-
-
Zhao, Y.1
Dyck, J.S.2
Hernandez, B.M.3
Burda, C.4
-
32
-
-
84905000498
-
Energizing wireless sensor networks by energy harvesting systems: Scopes, challenges and approaches
-
Oct
-
A. S. M. Z. Kausar, A. W. Reza, M. U. Saleh, and H. Ramiah, "Energizing wireless sensor networks by energy harvesting systems: Scopes, challenges and approaches," Renew. Sustain. Energy Rev., vol. 38, pp. 973-989, Oct. 2014.
-
(2014)
Renew. Sustain. Energy Rev.
, vol.38
, pp. 973-989
-
-
Kausar, A.S.M.Z.1
Reza, A.W.2
Saleh, M.U.3
Ramiah, H.4
-
34
-
-
84879451488
-
Nanostructured thermoelectric materials: Current research and future challenge
-
Z.-G. Chen, G. Han, L. Yang, L. Cheng, and J. Zou, "Nanostructured thermoelectric materials: Current research and future challenge," Prog. Natural Sci., Mater. Int., vol. 22, no. 6, pp. 535-549, 2012.
-
(2012)
Prog. Natural Sci., Mater. Int.
, vol.22
, Issue.6
, pp. 535-549
-
-
Chen, Z.-G.1
Han, G.2
Yang, L.3
Cheng, L.4
Zou, J.5
-
35
-
-
84897947934
-
Nano bulk thermoelectrics: Concepts, techniques, and modeling
-
Cham, Switzerland: Springer
-
N. Satyala, P. Norouzzadeh, and D. Vashaee, "Nano bulk thermoelectrics: Concepts, techniques, and modeling," in Nanoscale Thermoelectrics. Cham, Switzerland: Springer, 2014, pp. 141-183.
-
(2014)
Nanoscale Thermoelectrics
, pp. 141-183
-
-
Satyala, N.1
Norouzzadeh, P.2
Vashaee, D.3
-
36
-
-
84862200488
-
Printed se-doped MA n-type Bi2Te3 thick-film thermoelectric generators
-
Jun
-
D. Madan, A. Chen, P. K. Wright, and J. W. Evans, "Printed se-doped MA n-type Bi2Te3 thick-film thermoelectric generators," J. Electron. Mater., vol. 41, no. 6, pp. 1481-1486, Jun. 2012. doi: 10.1007/s11664-011-1885-5.
-
(2012)
J. Electron. Mater.
, vol.41
, Issue.6
, pp. 1481-1486
-
-
Madan, D.1
Chen, A.2
Wright, P.K.3
Evans, J.W.4
-
37
-
-
84962343680
-
Storage-less and converter-less photovoltaic energy harvesting with maximum power point tracking for Internet of Things
-
Feb
-
Y. Wang, Y. Liu, C. Wang, Z. Li, X. Sheng, H. G. Lee, N. Chang, and H. Yang, "Storage-less and converter-less photovoltaic energy harvesting with maximum power point tracking for Internet of Things," IEEE Trans.comput.-Aided Des. Integr. Circuits Syst., vol. 35, no. 2, pp. 173-186, Feb. 2016.
-
(2016)
IEEE Trans.comput.-Aided Des. Integr. Circuits Syst.
, vol.35
, Issue.2
, pp. 173-186
-
-
Wang, Y.1
Liu, Y.2
Wang, C.3
Li, Z.4
Sheng, X.5
Lee, H.G.6
Chang, N.7
Yang, H.8
-
38
-
-
85070185173
-
-
[Online]
-
M. Raju and M. Grazier. (2012). ULP Meets Energy Harvesting. [Online]. Available: http://www.extensionmedia.com/basecamp/54722/eecatlowpowermarch2011/ULP-MEETS-ENERGY-TI-v1.pdf
-
(2012)
ULP Meets Energy Harvesting
-
-
Raju, M.1
Grazier, M.2
-
39
-
-
84948437290
-
Energy harvesting in wireless sensor networks: A comprehensive review
-
Mar
-
F. K. Shaikh and S. Zeadally, "Energy harvesting in wireless sensor networks: A comprehensive review," Renew. Sustain. Energy Rev., vol. 55, pp. 1041-1054, Mar. 2016.
-
(2016)
Renew. Sustain. Energy Rev.
, vol.55
, pp. 1041-1054
-
-
Shaikh, F.K.1
Zeadally, S.2
-
40
-
-
41849089305
-
Energy scavenging for long-term deployable wireless sensor networks
-
C. Ó. Mathuna, T. O'Donnell, R. V. Martinez-Catala, J. Rohan, and B. O'Flynn, "Energy scavenging for long-term deployable wireless sensor networks," Talanta, vol. 75, no. 3, pp. 613-623, 2008.
-
(2008)
Talanta
, vol.75
, Issue.3
, pp. 613-623
-
-
Mathuna, C.O.1
O'Donnell, T.2
Martinez-Catala, R.V.3
Rohan, J.4
O'Flynn, B.5
-
41
-
-
5844222854
-
Die gittertheorie der festen Korper
-
Berlin Germany: Springer
-
G. Heckmann, "Die gittertheorie der festen Korper," in Ergebnisse der Exakten Naturwissenschaften. Berlin, Germany: Springer, 1925, pp. 100-153.
-
(1925)
Ergebnisse der Exakten Naturwissenschaften
, pp. 100-153
-
-
Heckmann, G.1
-
42
-
-
84961134605
-
A database to enable discovery and design of piezoelectric materials
-
Sep
-
M. de Jong, W. Chen, H. Geerlings, M. Asta, and K. A. Persson, "A database to enable discovery and design of piezoelectric materials," Sci. Data, vol. 2, Sep. 2015, Art. no. 150053.
-
(2015)
Sci. Data
, vol.2
-
-
De Jong, M.1
Chen, W.2
Geerlings, H.3
Asta, M.4
Persson, K.A.5
-
43
-
-
85058990497
-
Power scavenging enables maintenance-free wireless sensor nodes
-
F. M. Discenzo, D. Chung, and K. A. Loparo, "Power scavenging enables maintenance-free wireless sensor nodes," in Proc. 6th Int. Conf.complex Syst., 2006, pp. 1-8.
-
(2006)
Proc. 6th Int. Conf.complex Syst
, pp. 1-8
-
-
Discenzo, F.M.1
Chung, D.2
Loparo, K.A.3
-
44
-
-
0030408129
-
Human-powered wearable computing
-
T. Starner, "Human-powered wearable computing," IBM Syst. J., vol. 35, nos. 3-4, pp. 618-629, 1996.
-
(1996)
IBM Syst. J.
, vol.35
, Issue.3-4
, pp. 618-629
-
-
Starner, T.1
-
45
-
-
0035330620
-
Energy scavenging with shoe-mounted piezoelectrics
-
May/Jun
-
N. S. Shenck and J. A. Paradiso, "Energy scavenging with shoe-mounted piezoelectrics," IEEE Micro, vol. 21, no. 3, pp. 30-42, May/Jun. 2001.
-
(2001)
IEEE Micro
, vol.21
, Issue.3
, pp. 30-42
-
-
Shenck, N.S.1
Paradiso, J.A.2
-
46
-
-
84862165737
-
A glucose fuel cell for implantable brain-machine interfaces
-
B. I. Rapoport, J. T. Kedzierski, and R. Sarpeshkar, "A glucose fuel cell for implantable brain-machine interfaces," PLoS One, vol. 7, no. 6, 2012, Art. no. e38436.
-
(2012)
PLoS One
, vol.7
, Issue.6
-
-
Rapoport, B.I.1
Kedzierski, J.T.2
Sarpeshkar, R.3
-
47
-
-
84880168760
-
Epidermal biofuel cells: Energy harvesting from human perspiration
-
W. Jia, G. Valdes-Ramirez, A. J. Bandodkar, J. R. Windmiller, and J. Wang, "Epidermal biofuel cells: Energy harvesting from human perspiration," Angew. Chem. Int. Ed., vol. 52, no. 28, pp. 7233-7236, 2013.
-
(2013)
Angew. Chem. Int. Ed.
, vol.52
, Issue.28
, pp. 7233-7236
-
-
Jia, W.1
Valdes-Ramirez, G.2
Bandodkar, A.J.3
Windmiller, J.R.4
Wang, J.5
-
48
-
-
84869407386
-
Nanotechnology-enabled energy harvesting for self-powered micro-/nanosystems
-
Z. L. Wang and W. Wu, "Nanotechnology-enabled energy harvesting for self-powered micro-/nanosystems," Angew. Chem. Int. Ed., vol. 51, no. 47, pp. 11700-11721,2012.
-
(2012)
Angew. Chem. Int. Ed.
, vol.51
, Issue.47
, pp. 11700-11721
-
-
Wang, Z.L.1
Wu, W.2
-
49
-
-
28344435747
-
Review of energy harvesting techniques and applications for microelectronics (keynote address)
-
Jun
-
L. Mateu and F. Moll, "Review of energy harvesting techniques and applications for microelectronics (keynote address)," Proc. SPIE, vol. 5837, pp. 359-374, Jun. 2005.
-
(2005)
Proc. SPIE
, vol.5837
, pp. 359-374
-
-
Mateu, L.1
Moll, F.2
-
50
-
-
84871632664
-
Energy harvesting from the beating heart by amass imbalance oscillation generator
-
A. Zurbuchen, A. Pfenniger, A. Stahel, C. T. Stoeck, S. Vandenberghe, V. M. Koch, and R. Vogel, "Energy harvesting from the beating heart by amass imbalance oscillation generator," Ann. Biomed. Eng., vol. 41, no. 1, pp. 131-141, 2013.
-
(2013)
Ann. Biomed. Eng.
, vol.41
, Issue.1
, pp. 131-141
-
-
Zurbuchen, A.1
Pfenniger, A.2
Stahel, A.3
Stoeck, C.T.4
Vandenberghe, S.5
Koch, V.M.6
Vogel, R.7
-
51
-
-
0034851818
-
Piezoelectric energy harvesting for bio-MEMS applications
-
Jun
-
M. J. Ramsay and W. W. Clark, "Piezoelectric energy harvesting for bio-MEMS applications," Proc. SPIE, vol. 4332, pp. 429-439, Jun. 2001.
-
(2001)
Proc. SPIE
, vol.4332
, pp. 429-439
-
-
Ramsay, M.J.1
Clark, W.W.2
-
52
-
-
84893477161
-
Conformal piezoelectric energy harvesting and storage from motions of the heart, lung, and diaphragm
-
C. Dagdeviren, B. D. Yang, Y. Su, P. L. Tran, P. Joe, E. Anderson, J. Xia, V. Doraiswamy, B. Dehdashti, X. Feng, B. Lu, R. Poston, Z. Khalpey, R. Ghaffari, Y. Huang, M. J. Slepian, and J. A. Rogers, "Conformal piezoelectric energy harvesting and storage from motions of the heart, lung, and diaphragm," Proc. Nat. Acad. Sci. USA, vol. 111, no. 5, pp. 1927-1932, 2014.
-
(2014)
Proc. Nat. Acad. Sci. USA
, vol.111
, Issue.5
, pp. 1927-1932
-
-
Dagdeviren, C.1
Yang, B.D.2
Su, Y.3
Tran, P.L.4
Joe, P.5
Anderson, E.6
Xia, J.7
Doraiswamy, V.8
Dehdashti, B.9
Feng, X.10
Lu, B.11
Poston, R.12
Khalpey, Z.13
Ghaffari, R.14
Huang, Y.15
Slepian, M.J.16
Rogers, J.A.17
-
53
-
-
84880572400
-
Vibrational energy harvesting from human gait
-
Apr
-
N. G. Elvin and A. A. Elvin, "Vibrational energy harvesting from human gait," IEEE/ASME Trans. Mechatronics, vol. 18, no. 2, pp. 637-644, Apr. 2013.
-
(2013)
IEEE/ASME Trans. Mechatronics
, vol.18
, Issue.2
, pp. 637-644
-
-
Elvin, N.G.1
Elvin, A.A.2
-
54
-
-
51649122440
-
Energy harvesting from human and machine motion for wireless electronic devices
-
Sep
-
P. D. Mitcheson, E. M. Yeatman, G. K. Rao, A. S. Holmes, and T. C. Green, "Energy harvesting from human and machine motion for wireless electronic devices," Proc. IEEE, vol. 96, no. 9, pp. 1457-1486, Sep. 2008.
-
(2008)
Proc. IEEE
, vol.96
, Issue.9
, pp. 1457-1486
-
-
Mitcheson, P.D.1
Yeatman, E.M.2
Rao, G.K.3
Holmes, A.S.4
Green, T.C.5
-
55
-
-
84949178118
-
Energy harvesting with vibrating shoe-mounted piezoelectric cantilevers
-
New York, NY, USA: Springer
-
D. Benasciutti and L. Moro, "Energy harvesting with vibrating shoe-mounted piezoelectric cantilevers," in Advances in Energy Harvesting Methods. New York, NY, USA: Springer, 2013, pp. 141-162.
-
(2013)
Advances in Energy Harvesting Methods
, pp. 141-162
-
-
Benasciutti, D.1
Moro, L.2
-
56
-
-
3042787287
-
-
Ph.D. dissertation, Dept. Eng.-Mech. Eng., Univ. California, Berkeley, Berkeley, CA, USA
-
S. J. Roundy, "Energy scavenging for wireless sensor nodes with a focus on vibration to electricity conversion," Ph.D. dissertation, Dept. Eng.-Mech. Eng., Univ. California, Berkeley, Berkeley, CA, USA, 2003.
-
(2003)
Energy Scavenging for Wireless Sensor Nodes with A Focus on Vibration to Electricity Conversion
-
-
Roundy, S.J.1
-
57
-
-
84942422328
-
Retro-VLC: Enabling battery-free duplex visible light communication for mobile and IoT applications
-
J. Li, A. Liu, G. Shen, L. Li, C. Sun, and F. Zhao, "Retro-VLC: Enabling battery-free duplex visible light communication for mobile and IoT applications," in Proc. 16th Int. Workshop Mobile Comput. Syst. Appl., 2015, pp. 21-26.
-
(2015)
Proc. 16th Int. Workshop Mobile Comput. Syst. Appl
, pp. 21-26
-
-
Li, J.1
Liu, A.2
Shen, G.3
Li, L.4
Sun, C.5
Zhao, F.6
-
58
-
-
85052696239
-
Energy-harvesting wireless sensor networks (EH-WSNs): A review
-
Jul. [Online]
-
K. S. Adu-Manu, N. Adam, C. Tapparello, H. Ayatollahi, and W. Heinzelman, "Energy-harvesting wireless sensor networks (EH-WSNs): A review," ACM Trans. Sensor Netw., vol. 14, no. 2, Jul. 2018, Art. no. 10. [Online]. Available: http://doi.acm.org/10.1145/3183338
-
(2018)
ACM Trans. Sensor Netw.
, vol.14
, Issue.2
-
-
Adu-Manu, K.S.1
Adam, N.2
Tapparello, C.3
Ayatollahi, H.4
Heinzelman, W.5
-
59
-
-
85070215179
-
-
Ningbo Yongjiang Shenzhou Photovoltaic Co. Ltd. [Online]
-
Ningbo Yongjiang Shenzhou Photovoltaic Co., Ltd. (2019). 0.55W/4V Encapsulated Solar Panel. [Online]. Available: https://cnszgd.en.ec21.com/0.55W-4V-Encapsulated-Solar-Panel-2101891-2102227.html
-
(2019)
0.55W/4V Encapsulated Solar Panel
-
-
-
60
-
-
85070191860
-
-
Libelium. [Online]
-
Libelium. (2019). IoT Made Easy. [Online]. Available: http://www.libelium.com/products/plug-sense/technical-overview/
-
(2019)
IoT Made Easy
-
-
-
61
-
-
85047808339
-
Ambient backscatter communications: A contemporary survey
-
4th Quart
-
N. Van Huynh, D. T. Hoang, X. Lu, D. Niyato, P. Wang, and D. I. Kim, "Ambient backscatter communications: A contemporary survey," IEEE Commun. Surveys Tuts., vol. 20, no. 4, pp. 2889-2922, 4th Quart., 2018.
-
(2018)
IEEE Commun. Surveys Tuts.
, vol.20
, Issue.4
, pp. 2889-2922
-
-
Van Huynh, N.1
Hoang, D.T.2
Lu, X.3
Niyato, D.4
Wang, P.5
Kim, D.I.6
-
62
-
-
85043359863
-
Multiband ambient RF energy harvesting circuit design for enabling batteryless sensors and IoT
-
Aug
-
U. Muncuk, K. Alemdar, J. D. Sarode, and K. R. Chowdhury, "Multiband ambient RF energy harvesting circuit design for enabling batteryless sensors and IoT," IEEE Internet Things J., vol. 5, no. 4, pp. 2700-2714, Aug. 2018.
-
(2018)
IEEE Internet Things J.
, vol.5
, Issue.4
, pp. 2700-2714
-
-
Muncuk, U.1
Alemdar, K.2
Sarode, J.D.3
Chowdhury, K.R.4
-
63
-
-
85058297589
-
Hardware-software codesign of wireless transceivers on zynq heterogeneous systems
-
Oct./Dec
-
B. Drozdenko, M. Zimmermann, T. Dao, K. Chowdhury, and M. Leeser, "Hardware-software codesign of wireless transceivers on zynq heterogeneous systems," IEEE Trans. Emerg. Topics Comput., vol. 6, no. 4, pp. 566-578, Oct./Dec. 2018.
-
(2018)
IEEE Trans. Emerg. Topics Comput.
, vol.6
, Issue.4
, pp. 566-578
-
-
Drozdenko, B.1
Zimmermann, M.2
Dao, T.3
Chowdhury, K.4
Leeser, M.5
-
64
-
-
85013156430
-
On the scalability of energy in wireless RF powered Internet of Things
-
Dec
-
R. G. Cid-Fuentes, M. Y. Naderi, K. R. Chowdhury, A. Cabellos-Aparicio, and E. Alarcoon, "On the scalability of energy in wireless RF powered Internet of Things," IEEE Commun. Lett., vol. 20, no. 12, pp. 2554-2557, Dec. 2016.
-
(2016)
IEEE Commun. Lett.
, vol.20
, Issue.12
, pp. 2554-2557
-
-
Cid-Fuentes, R.G.1
Naderi, M.Y.2
Chowdhury, K.R.3
Cabellos-Aparicio, A.4
Alarcoon, E.5
-
65
-
-
84927598344
-
Smart RF energy harvesting communications: Challenges and opportunities
-
Apr
-
D. Mishra, S. De, S. Jana, S. Basagni, K. Chowdhury, and W. Heinzelman, "Smart RF energy harvesting communications: Challenges and opportunities," IEEE Commun. Mag., vol. 53, no. 4, pp. 70-78, Apr. 2015.
-
(2015)
IEEE Commun. Mag.
, vol.53
, Issue.4
, pp. 70-78
-
-
Mishra, D.1
De, S.2
Jana, S.3
Basagni, S.4
Chowdhury, K.5
Heinzelman, W.6
-
66
-
-
84927132258
-
Charging time characterization for wireless RF energy transfer
-
Apr
-
D. Mishra, S. De, and K. R. Chowdhury, "Charging time characterization for wireless RF energy transfer," IEEE Trans. Circuits Syst., II, Exp. Briefs, vol. 62, no. 4, pp. 362-366, Apr. 2015.
-
(2015)
IEEE Trans. Circuits Syst., II, Exp. Briefs
, vol.62
, Issue.4
, pp. 362-366
-
-
Mishra, D.1
De, S.2
Chowdhury, K.R.3
-
67
-
-
84986592383
-
Powering the next billion devices with Wi-Fi
-
New York, NY, USA. [Online]
-
V. Talla, B. Kellogg, B. Ransford, S. Naderiparizi, S. Gollakota, and J. R. Smith, "Powering the next billion devices with Wi-Fi," in Proc. 11th ACM Conf. Emerg. Netw. Exp. Technol. (CoNEXT), New York, NY, USA, 2015, Art. no. 4. [Online]. Available: http://doi.acm.org/10.1145/2716281.2836089
-
(2015)
Proc. 11th ACM Conf. Emerg. Netw. Exp. Technol. (CoNEXT)
-
-
Talla, V.1
Kellogg, B.2
Ransford, B.3
Naderiparizi, S.4
Gollakota, S.5
Smith, J.R.6
-
68
-
-
85070240229
-
-
Powercast. [Online]
-
Powercast. (2019). 915 MHz Rf Powerharvester Receiver. [Online]. Available: https://www.powercastco.com/wp-content/uploads/2016/12/P2110B-Datasheet-Rev-3.pdf
-
(2019)
915 MHz Rf Powerharvester Receiver
-
-
-
69
-
-
85070197536
-
-
Powercast. [Online]
-
Powercast. (2019). Self-Powered Wireless Standard for Smart Buildings. [Online]. Available: https://www.enocean.com/en/enocean-modules-315mhz/stm-300c-user-manual.pdf
-
(2019)
Self-Powered Wireless Standard for Smart Buildings
-
-
-
71
-
-
34247102323
-
Thermoelectric converters of human warmth for self-powered wireless sensor nodes
-
May
-
V. Leonov, T. Torfs, P. Fiorini, and C. Van Hoof, "Thermoelectric converters of human warmth for self-powered wireless sensor nodes," IEEE Sensors J., vol. 7, no. 5, pp. 650-657, May 2007.
-
(2007)
IEEE Sensors J.
, vol.7
, Issue.5
, pp. 650-657
-
-
Leonov, V.1
Torfs, T.2
Fiorini, P.3
Van Hoof, C.4
-
72
-
-
71649083187
-
Realization of a wearable miniaturized thermoelectric generator for human body applications
-
Nov
-
Z. Wang, V. Leonov, P. Fiorini, and C. van Hoof, "Realization of a wearable miniaturized thermoelectric generator for human body applications," Sens. Actuators Phys., vol. 156, no. 1, pp. 95-102, Nov. 2009.
-
(2009)
Sens. Actuators Phys.
, vol.156
, Issue.1
, pp. 95-102
-
-
Wang, Z.1
Leonov, V.2
Fiorini, P.3
Van Hoof, C.4
-
73
-
-
76349101856
-
Thermal energy harvesting through pyroelectricity
-
Mar
-
A. Cuadras, M. Gasulla, and V. Ferrari, "Thermal energy harvesting through pyroelectricity," Sens. Actuators A, Phys., vol. 158, no. 1, pp. 132-139, Mar. 2010.
-
(2010)
Sens. Actuators A, Phys.
, vol.158
, Issue.1
, pp. 132-139
-
-
Cuadras, A.1
Gasulla, M.2
Ferrari, V.3
-
74
-
-
33947312473
-
Modeling, fabrication and performance measurements of a piezoelectric energy converter for power harvesting in autonomous microsystems
-
Dec
-
M. Ferrari, V. Ferrari, D. Marioli, and A. Taroni, "Modeling, fabrication and performance measurements of a piezoelectric energy converter for power harvesting in autonomous microsystems," IEEE Trans. Instrum. Meas., vol. 55, no. 6, pp. 2096-2101, Dec. 2006.
-
(2006)
IEEE Trans. Instrum. Meas.
, vol.55
, Issue.6
, pp. 2096-2101
-
-
Ferrari, M.1
Ferrari, V.2
Marioli, D.3
Taroni, A.4
-
75
-
-
79951668224
-
Energy harvesting: State-of-The-art
-
A. Harb, "Energy harvesting: State-of-the-art," Renew. Energy, vol. 36, no. 10, pp. 2641-2654, 2011.
-
(2011)
Renew. Energy
, vol.36
, Issue.10
, pp. 2641-2654
-
-
Harb, A.1
-
76
-
-
85070192312
-
-
Marlow. [Online]
-
Marlow. (2019). Thermocyclers. [Online]. Available: https://www.marlow.com/products/thermoelectric-coolers/thermocyclers
-
(2019)
Thermocyclers
-
-
-
77
-
-
83255170612
-
Self powered wearable health monitoring system
-
vols. 403-W8, Nov
-
H. Singh and C. M. Lalchand, "Self powered wearable health monitoring system," Adv. Mater. Res., vols. 403-W8, pp. 3839-3846, Nov. 2012.
-
(2012)
Adv. Mater. Res.
, pp. 3839-3846
-
-
Singh, H.1
Lalchand, C.M.2
-
78
-
-
84944715448
-
An electret-based electrostatic /x-generator
-
Jun
-
T. Sterken, P. Fiorini, K. Baert, R. Puers, and G. Borghs, "An electret-based electrostatic /x-generator," in Proc. 12th Int. Conf., Solid-State Sens., Actuators Microsyst. (TRANSDUCERS), vol. 2, Jun. 2003, pp. 1291-1294.
-
(2003)
Proc. 12th Int. Conf., Solid-State Sens., Actuators Microsyst. (TRANSDUCERS)
, vol.2
, pp. 1291-1294
-
-
Sterken, T.1
Fiorini, P.2
Baert, K.3
Puers, R.4
Borghs, G.5
-
79
-
-
85008014327
-
Self-powered sensors for monitoring of highway bridges
-
Nov
-
E. Sazonov, H. Li, D. Curry, and P. Pillay, "Self-powered sensors for monitoring of highway bridges," IEEE Sensors J., vol. 9, no. 11, pp. 1422-1429, Nov. 2009.
-
(2009)
IEEE Sensors J.
, vol.9
, Issue.11
, pp. 1422-1429
-
-
Sazonov, E.1
Li, H.2
Curry, D.3
Pillay, P.4
-
80
-
-
85007041366
-
Parasiticpower harvesting in shoes
-
Oct
-
J. Kymissis, C. Kendall, J. Paradiso, and N. Gershenfeld, "Parasiticpower harvesting in shoes," in Dig. Papers 2nd Int. Symp. Wearable Comput., Oct. 1998, pp. 132-139.
-
(1998)
Dig. Papers 2nd Int. Symp. Wearable Comput.
, pp. 132-139
-
-
Kymissis, J.1
Kendall, C.2
Paradiso, J.3
Gershenfeld, N.4
-
81
-
-
78650130636
-
-
Nano Lett.
-
K.-I. Park, S. Xu, Y. Liu, G.-T. Hwang, S.-J. L. Kang, Z. L. Wang, and K. J. Lee, "Piezoelectric BaTiO3 thin film nanogenerator on plastic substrates," Nano Lett., vol. 10, no. 12, pp. 4939-4943, 2010.
-
(2010)
Piezoelectric BaTiO3 thin film nanogenerator on plastic substrates
, vol.10
, Issue.12
, pp. 4939-4943
-
-
Park, K.-I.1
Xu, S.2
Liu, Y.3
Hwang, G.-T.4
Kang, S.-J.L.5
Wang, Z.L.6
Lee, K.J.7
-
82
-
-
84869996100
-
A high performance PZT ribbon-based nanogenerator using graphene transparent electrodes
-
J. Kwon, W. Seung, B. K. Sharma, S.-W. Kim, and J.-H. Ahn, "A high performance PZT ribbon-based nanogenerator using graphene transparent electrodes," Energy Environ. Sci., vol. 5, no. 10, pp. 8970-8975, 2012.
-
(2012)
Energy Environ. Sci.
, vol.5
, Issue.10
, pp. 8970-8975
-
-
Kwon, J.1
Seung, W.2
Sharma, B.K.3
Kim, S.-W.4
Ahn, J.-H.5
-
83
-
-
84904709233
-
Self-powered cardiac pacemaker enabled by flexible single crystalline PMN-PT piezoelectric energy harvester
-
Jul
-
G.-T. Hwang, H. Park, J.-H. Lee, S. Oh, K.-I. Park, M. Byun, H. Park, G. Ahn, C. K. Jeong, K. No, H. Kwon, S.-G. Lee, B. Joung, and K. Jae, "Self-powered cardiac pacemaker enabled by flexible single crystalline PMN-PT piezoelectric energy harvester," Adv. Mater., vol. 26, no. 28, pp. 4880-4887, Jul. 2014.
-
(2014)
Adv. Mater.
, vol.26
, Issue.28
, pp. 4880-4887
-
-
Hwang, G.-T.1
Park, H.2
Lee, J.-H.3
Oh, S.4
Park, K.-I.5
Byun, M.6
Park, H.7
Ahn, G.8
Jeong, C.K.9
No, K.10
Kwon, H.11
Lee, S.-G.12
Joung, B.13
Jae, K.14
-
84
-
-
85070214521
-
-
Peizo.com. [Online]
-
Peizo.com. (2019). QPK-1001. [Online]. Available: https://piezo.com/
-
(2019)
QPK-1001
-
-
-
85
-
-
85070229952
-
-
Ph.D. dissertation, Inst. Micorelectron-ique, Universite Grenoble Alpes, Grenoble, France
-
B. Franciscatto, "Design and implementation of a new low-power consumption DSRC transponder," Ph.D. dissertation, Inst. Micorelectron-ique, Universite Grenoble Alpes, Grenoble, France, 2014.
-
(2014)
Design and Implementation of A New Low-power Consumption DSRC Transponder
-
-
Franciscatto, B.1
-
86
-
-
84896754139
-
Energy harvesting technology for maintenance-free sensors
-
Jan
-
T. Tanaka, T. Suzuki, and K. Kurihara, "Energy harvesting technology for maintenance-free sensors," Fujitsu Sci. Technol. J., vol. 50, pp. 93-100, Jan. 2014.
-
(2014)
Fujitsu Sci. Technol. J.
, vol.50
, pp. 93-100
-
-
Tanaka, T.1
Suzuki, T.2
Kurihara, K.3
-
87
-
-
85008034320
-
Autonomous sensor nodes for aircraft structural health monitoring
-
Nov
-
T. Becker, M. Kluge, J. Schalk, K. Tiplady, C. Paget, U. Hilleringmann, and T. Otterpohl, "Autonomous sensor nodes for aircraft structural health monitoring," IEEE Sensors J., vol. 9, no. 11, pp. 1589-1595, Nov. 2009.
-
(2009)
IEEE Sensors J.
, vol.9
, Issue.11
, pp. 1589-1595
-
-
Becker, T.1
Kluge, M.2
Schalk, J.3
Tiplady, K.4
Paget, C.5
Hilleringmann, U.6
Otterpohl, T.7
-
88
-
-
84873339278
-
Low power wireless sensor network for building monitoring
-
Mar
-
T. Torfs, T. Sterken, S. Brebels, J. Santana, R. van den Hoven, V. Spiering, N. Bertsch, D. Trapani, and D. Zonta, "Low power wireless sensor network for building monitoring," IEEE Sensors J., vol. 13, no. 3, pp. 909-915, Mar. 2013.
-
(2013)
IEEE Sensors J.
, vol.13
, Issue.3
, pp. 909-915
-
-
Torfs, T.1
Sterken, T.2
Brebels, S.3
Santana, J.4
Van Den Hoven, R.5
Spiering, V.6
Bertsch, N.7
Trapani, D.8
Zonta, D.9
-
89
-
-
85008033773
-
Highway bridge assessment using an adaptive real-time wireless sensor network
-
Nov
-
M. J. Whelan, M. V. Gangone, and K. D. Janoyan, "Highway bridge assessment using an adaptive real-time wireless sensor network," IEEE Sensors J., vol. 9, no. 11, pp. 1405-1413, Nov. 2009.
-
(2009)
IEEE Sensors J.
, vol.9
, Issue.11
, pp. 1405-1413
-
-
Whelan, M.J.1
Gangone, M.V.2
Janoyan, K.D.3
-
90
-
-
39549113662
-
Energy harvesting for structural health monitoring sensor networks
-
G. Park, T. Rosing, M. D. Todd, C. R. Farrar, and W. Hodgkiss, "Energy harvesting for structural health monitoring sensor networks," J. Infras-truct. Syst., vol. 14, no. 1, pp. 64-79, 2008.
-
(2008)
J. Infras-truct. Syst.
, vol.14
, Issue.1
, pp. 64-79
-
-
Park, G.1
Rosing, T.2
Todd, M.D.3
Farrar, C.R.4
Hodgkiss, W.5
-
91
-
-
19544386285
-
Wireless sensor network for aircraft health monitoring
-
Oct
-
H. Bai, M. Atiquzzaman, and D. Lilja, "Wireless sensor network for aircraft health monitoring," in Proc. 1st Int. Conf. Broadband Netw. (BroadNets), Oct. 2004, pp. 748-750.
-
(2004)
Proc. 1st Int. Conf. Broadband Netw. (BroadNets)
, pp. 748-750
-
-
Bai, H.1
Atiquzzaman, M.2
Lilja, D.3
-
92
-
-
44349136370
-
Power harvesting for railroad track health monitoring using piezoelectric and inductive devices
-
Apr
-
C. A. Nelson, S. R. Platt, D. Albrecht, V. Kamarajugadda, and M. Fateh, "Power harvesting for railroad track health monitoring using piezoelectric and inductive devices," Proc. SPIE, vol. 6928, Apr. 2008, Art. no. 69280R.
-
(2008)
Proc. SPIE
, vol.6928
-
-
Nelson, C.A.1
Platt, S.R.2
Albrecht, D.3
Kamarajugadda, V.4
Fateh, M.5
-
93
-
-
77956882701
-
Wireless sensor networks for healthcare: A survey
-
Oct
-
H. Alemdar and C. Ersoy, "Wireless sensor networks for healthcare: A survey," Comput. Netw., vol. 54, no. 15, pp. 2688-2710, Oct. 2010.
-
(2010)
Comput. Netw.
, vol.54
, Issue.15
, pp. 2688-2710
-
-
Alemdar, H.1
Ersoy, C.2
-
94
-
-
70350662882
-
A mobile host approach for wireless powering and interrogation of structural health monitoring sensor networks
-
Dec
-
D. Mascarenas, E. Flynn, C. Farrar, G. Park, and M. Todd, "A mobile host approach for wireless powering and interrogation of structural health monitoring sensor networks," IEEE Sensors J., vol. 9, no. 12, pp. 1719-1726, Dec. 2009.
-
(2009)
IEEE Sensors J.
, vol.9
, Issue.12
, pp. 1719-1726
-
-
Mascarenas, D.1
Flynn, E.2
Farrar, C.3
Park, G.4
Todd, M.5
-
95
-
-
70350776652
-
MEMS energy harvesting powered wireless biometric sensor
-
Jun
-
C. He, A. Arora, M. E. Kiziroglou, D. C. Yates, D. O'Hare, and E. M. Yeatman, "MEMS energy harvesting powered wireless biometric sensor," in Proc. 6thInt. WorkshopWearableImplant. BodySensorNetw., Jun. 2009, pp. 207-212.
-
(2009)
Proc. 6thInt. WorkshopWearableImplant. BodySensorNetw.
, pp. 207-212
-
-
He, C.1
Arora, A.2
Kiziroglou, M.E.3
Yates, D.C.4
O'Hare, D.5
Yeatman, E.M.6
-
96
-
-
84901950465
-
Autonomous wearable sensor nodes with flexible energy harvesting
-
Jul
-
W. Y. Toh, Y. K. Tan, W. S. Koh, and L. Siek, "Autonomous wearable sensor nodes with flexible energy harvesting," IEEE Sensors J., vol. 14, no. 7, pp. 2299-2306, Jul. 2014.
-
(2014)
IEEE Sensors J.
, vol.14
, Issue.7
, pp. 2299-2306
-
-
Toh, W.Y.1
Tan, Y.K.2
Koh, W.S.3
Siek, L.4
-
97
-
-
77957830574
-
Design and implementation of a generic energy-harvesting framework applied to the evaluation of a large-scale electronic shelf-labeling wireless sensor network
-
P. De Mil, B. Jooris, L. Tytgat, R. Catteeuw, I. Moerman, P. Demeester, and A. Kamerman, "Design and implementation of a generic energy-harvesting framework applied to the evaluation of a large-scale electronic shelf-labeling wireless sensor network," EURASIP J. Wireless Commun. Netw., vol. 2010, no. 1, 2010, Art. no. 343690.
-
(2010)
EURASIP J. Wireless Commun. Netw.
, vol.2010
, Issue.1
-
-
De Mil, P.1
Jooris, B.2
Tytgat, L.3
Catteeuw, R.4
Moerman, I.5
Demeester, P.6
Kamerman, A.7
-
98
-
-
79251543304
-
A novel DTN based energy neutral transfer scheme for energy harvested WSN gateways
-
T. V. Prabhakar, S. N. A. U. Nambi, H. S. Jamadagni, K. Swaroop, V. Prasad, and I. Niemegeers, "A novel DTN based energy neutral transfer scheme for energy harvested WSN gateways," ACM SIGMETRICS Perform. Eval. Rev., vol. 38, no. 3, pp. 71-75, 2011.
-
(2011)
ACM SIGMETRICS Perform. Eval. Rev.
, vol.38
, Issue.3
, pp. 71-75
-
-
Prabhakar, T.V.1
Nambi, S.N.A.U.2
Jamadagni, H.S.3
Swaroop, K.4
Prasad, V.5
Niemegeers, I.6
-
99
-
-
84959242568
-
Self-powered wireless sensor applied to gear diagnosis based on acoustic emission
-
Jan
-
M. D. Prieto, D. Z. Millan, W. Wang, A. M. Ortiz, J. A. O. Redondo, and L. R. Martinez, "Self-powered wireless sensor applied to gear diagnosis based on acoustic emission," IEEE Trans. Instrum. Meas., vol. 65, no. 1, pp. 15-24, Jan. 2016.
-
(2016)
IEEE Trans. Instrum. Meas.
, vol.65
, Issue.1
, pp. 15-24
-
-
Prieto, M.D.1
Millan, D.Z.2
Wang, W.3
Ortiz, A.M.4
Redondo, J.A.O.5
Martinez, L.R.6
-
100
-
-
79959894572
-
Wireless sensor networks for structure health monitoring: Recent advances and future research directions
-
B. Aygiin and V. C. Gungor, "Wireless sensor networks for structure health monitoring: Recent advances and future research directions," Sen-sorRev., vol. 31, no. 3, pp. 261-276, 2011.
-
(2011)
Sen-sorRev.
, vol.31
, Issue.3
, pp. 261-276
-
-
Aygiin, B.1
Gungor, V.C.2
-
101
-
-
84866490411
-
Novel industrial wireless sensor networks for machine condition monitoring and fault diagnosis
-
Oct
-
L. Hou and N. W. Bergmann, "Novel industrial wireless sensor networks for machine condition monitoring and fault diagnosis," IEEE Trans. Instrum. Meas., vol. 61, no. 10, pp. 2787-2798, Oct. 2012.
-
(2012)
IEEE Trans. Instrum. Meas.
, vol.61
, Issue.10
, pp. 2787-2798
-
-
Hou, L.1
Bergmann, N.W.2
-
102
-
-
85008030055
-
Vibration energy harvesting based on integrated piezoelectric components operating in different modes
-
Feb
-
J. Hu, J. Jong, and C. Zhao, "Vibration energy harvesting based on integrated piezoelectric components operating in different modes," IEEE Trans. Ultrason., Ferroelectr., Freq. Control, vol. 57, no. 2, pp. 386-394, Feb. 2010.
-
(2010)
IEEE Trans. Ultrason., Ferroelectr., Freq. Control
, vol.57
, Issue.2
, pp. 386-394
-
-
Hu, J.1
Jong, J.2
Zhao, C.3
-
103
-
-
84896915296
-
Solar energy harvesting for autonomous field devices
-
Mar
-
A. Decker, "Solar energy harvesting for autonomous field devices," IET Wireless Sensor Syst., vol. 4, no. 1, pp. 1-8, Mar. 2014.
-
(2014)
IET Wireless Sensor Syst.
, vol.4
, Issue.1
, pp. 1-8
-
-
Decker, A.1
-
104
-
-
84879089052
-
A survey of multi-source energy harvesting systems
-
Mar
-
A. S. Weddell, M. Magno, G. V. Merrett, D. Brunelli, B. M. Al-Hashimi, and L. Benini, "A survey of multi-source energy harvesting systems," in Proc. Design, Autom. Test Eur. Conf. Exhib., Mar. 2013, pp. 905-908.
-
(2013)
Proc. Design, Autom. Test Eur. Conf. Exhib.
, pp. 905-908
-
-
Weddell, A.S.1
Magno, M.2
Merrett, G.V.3
Brunelli, D.4
Al-Hashimi, B.M.5
Benini, L.6
-
105
-
-
85070193488
-
-
Silicon Labs. [Online]
-
Silicon Labs. (2015). Battery Size Matters. [Online]. Available: https://www.silabs.com/Support%20Documents/TechnicalDocs/battery-life-in-connected-wireless-iot-devices.pdf
-
(2015)
Battery Size Matters
-
-
-
106
-
-
85016450505
-
-
Hoboken, NJ, USA: Wiley
-
D. Briand, E. Yeatman, S. Roundy, O. Brand, G. K. Fedder, C. Hierold, J. G. Korvink, and O. Tabata, Micro Energy Harvesting. Hoboken, NJ, USA: Wiley, 2015.
-
(2015)
Micro Energy Harvesting
-
-
Briand, D.1
Yeatman, E.2
Roundy, S.3
Brand, O.4
Fedder, G.K.5
Hierold, C.6
Korvink, J.G.7
Tabata, O.8
-
107
-
-
84896455415
-
Piezoelectric energy harvesting solutions
-
Mar
-
R. Calio, U. B. Rongala, D. Camboni, M. Milazzo, C. Stefanini, G. De Petris, and C. M. Oddo, "Piezoelectric energy harvesting solutions," Sensors, vol. 14, no. 3, pp. 4755-4790, Mar. 2014.
-
(2014)
Sensors
, vol.14
, Issue.3
, pp. 4755-4790
-
-
Calio, R.1
Rongala, U.B.2
Camboni, D.3
Milazzo, M.4
Stefanini, C.5
De Petris, G.6
Oddo, C.M.7
-
108
-
-
84864222758
-
Cantilever driving low frequency piezoelectric energy harvester using single crystal material 0.71Pb(Mg1/3Nb2/3)O3-0.29PbTiO3
-
C. Xu, B. Ren, W. Di, Z. Liang, J. Jiao, L. Li, L. Li, X. Zhao, H. Luo, and D. Wang, "Cantilever driving low frequency piezoelectric energy harvester using single crystal material 0.71Pb(Mg1/3Nb2/3)O3-0.29PbTiO3," Appl. Phys. Lett., vol. 101, no. 3, 2012, Art. no. 033502.
-
(2012)
Appl. Phys. Lett.
, vol.101
, Issue.3
-
-
Xu, C.1
Ren, B.2
Di, W.3
Liang, Z.4
Jiao, J.5
Li, L.6
Li, L.7
Zhao, X.8
Luo, H.9
Wang, D.10
-
109
-
-
84973644322
-
Comparison of PZN-PT, PMN-PT single crystals and PZT ceramic for vibration energy harvesting
-
Aug
-
Z. Yang and J. Zu, "Comparison of PZN-PT, PMN-PT single crystals and PZT ceramic for vibration energy harvesting," Energy Convers. Manage., vol. 122, pp. 321-329, Aug. 2016.
-
(2016)
Energy Convers. Manage.
, vol.122
, pp. 321-329
-
-
Yang, Z.1
Zu, J.2
-
110
-
-
84866060236
-
Investigation of a d15 mode PZT-51 piezoelectric energy harvester with a series connection structure
-
J. Zhao, X. Zheng, L. Zhou, Y. Zhang, J. Sun, W. Dong, S. Deng, and S. Peng, "Investigation of a d15 mode PZT-51 piezoelectric energy harvester with a series connection structure," Smart Mater. Struct., vol. 21, no. 10, 2012, Art. no. 105006.
-
(2012)
Smart Mater. Struct.
, vol.21
, Issue.10
-
-
Zhao, J.1
Zheng, X.2
Zhou, L.3
Zhang, Y.4
Sun, J.5
Dong, W.6
Deng, S.7
Peng, S.8
-
111
-
-
85022079716
-
High performance bimorph piezoelectric MEMS harvester via bulk PZT thick films on thin beryllium-bronze substrate
-
Z. Yi, B. Yang, G. Li, J. Liu, X. Chen, X. Wang, and C. Yang, "High performance bimorph piezoelectric MEMS harvester via bulk PZT thick films on thin beryllium-bronze substrate," Appl. Phys. Lett., vol. 111, no. 1,2017, Art. no. 013902.
-
(2017)
Appl. Phys. Lett.
, vol.111
, Issue.1
-
-
Yi, Z.1
Yang, B.2
Li, G.3
Liu, J.4
Chen, X.5
Wang, X.6
Yang, C.7
-
112
-
-
84937779498
-
Harvesting vibration energy using two modal vibrations of a folded piezoelectric device
-
L. J. Gong, Q. S. Pan, W. Li, G. Y. Yan, Y. B. Liu, and Z. H. Feng, "Harvesting vibration energy using two modal vibrations of a folded piezoelectric device," Appl. Phys. Lett., vol. 107, no. 3, 2015, Art. no. 033904.
-
(2015)
Appl. Phys. Lett.
, vol.107
, Issue.3
-
-
Gong, L.J.1
Pan, Q.S.2
Li, W.3
Yan, G.Y.4
Liu, Y.B.5
Feng, Z.H.6
-
113
-
-
77953488658
-
Impedance matching for improving piezoelectric energy harvesting systems
-
Apr
-
J. Liang and W.-H. Liao, "Impedance matching for improving piezoelectric energy harvesting systems," Proc. SPIE, vol. 7643, Apr. 2010, Art. no. 76430K.
-
(2010)
Proc. SPIE
, vol.7643
-
-
Liang, J.1
Liao, W.-H.2
-
114
-
-
77949893197
-
Modeling and experimental verification of proof mass effects on vibration energy harvester performance
-
M. Kim, M. Hoegen, J. Dugundji, and B. L. Wardle, "Modeling and experimental verification of proof mass effects on vibration energy harvester performance," Smart Mater. Struct., vol. 19, no. 4, 2010, Art. no. 045023.
-
(2010)
Smart Mater. Struct.
, vol.19
, Issue.4
-
-
Kim, M.1
Hoegen, M.2
Dugundji, J.3
Wardle, B.L.4
-
115
-
-
79551484697
-
Low-frequency piezoelectric energy harvesting prototype suitable for the MEMS implementation
-
Feb
-
L. Gu, "Low-frequency piezoelectric energy harvesting prototype suitable for the MEMS implementation," Microelectron. J., vol. 42, no. 2, pp. 277-282, Feb. 2011.
-
(2011)
Microelectron. J.
, vol.42
, Issue.2
, pp. 277-282
-
-
Gu, L.1
-
116
-
-
85011835425
-
Modeling and parametric study of a force-amplified compressive-mode piezoelectric energy harvester
-
Z. Yang, J. Zu, J. Luo, and Y. Peng, "Modeling and parametric study of a force-amplified compressive-mode piezoelectric energy harvester," J. Intell. Mater. Syst. Struct., vol. 28, no. 3, pp. 357-366, 2017.
-
(2017)
J. Intell. Mater. Syst. Struct.
, vol.28
, Issue.3
, pp. 357-366
-
-
Yang, Z.1
Zu, J.2
Luo, J.3
Peng, Y.4
-
117
-
-
70349972972
-
Piezoelectric MEMS generators fabricated with an aerosol deposition PZT thin film
-
Jun
-
B. S. Lee, S. C. Lin, W. J. Wu, X. Y. Wang, P. Z. Chang, and C. K. Lee, "Piezoelectric MEMS generators fabricated with an aerosol deposition PZT thin film," J. Micromech. Microeng., vol. 19, no. 6, Jun. 2009, Art. no. 065014.
-
(2009)
J. Micromech. Microeng.
, vol.19
, Issue.6
-
-
Lee, B.S.1
Lin, S.C.2
Wu, W.J.3
Wang, X.Y.4
Chang, P.Z.5
Lee, C.K.6
-
118
-
-
68849103726
-
Micromachined PZT cantilever based on SOI structure for low frequency vibration energy harvesting
-
D. Shen, J.-H. Park, J. H. Noh, S.-Y. Choe, S.-H. Kim, H. C. Wikle, III, and D.-J. Kim, "Micromachined PZT cantilever based on SOI structure for low frequency vibration energy harvesting," Sens. Actuators A, Phys., vol. 154, no. 1, pp. 103-108, 2009.
-
(2009)
Sens. Actuators A, Phys.
, vol.154
, Issue.1
, pp. 103-108
-
-
Shen, D.1
Park, J.-H.2
Noh, J.H.3
Choe, S.-Y.4
Kim, S.-H.5
Wikle, H.C.6
Kim, D.-J.7
-
119
-
-
77957588625
-
Modeling and characterization of piezoelectric d33-mode MEMS energy harvester
-
Oct
-
J. C. Park, J. Y. Park, and Y.-P. Lee, "Modeling and characterization of piezoelectric d33-mode MEMS energy harvester," J. Micro Electro Mech. Syst., vol. 19, no. 5, pp. 1215-1222, Oct. 2010.
-
(2010)
J. Micro Electro Mech. Syst.
, vol.19
, Issue.5
, pp. 1215-1222
-
-
Park, J.C.1
Park, J.Y.2
Lee, Y.-P.3
-
120
-
-
85006043237
-
A piezoelectric micro generator worked at low frequency and high acceleration based on PZT and phosphor bronze bonding
-
Dec
-
G. Tang, B. Yang, C. Hou, G. Li, J. Liu, X. Chen, and C. Yang, "A piezoelectric micro generator worked at low frequency and high acceleration based on PZT and phosphor bronze bonding," Sci. Rep., vol. 6, Dec. 2016, Art. no. 38798.
-
(2016)
Sci. Rep.
, vol.6
-
-
Tang, G.1
Yang, B.2
Hou, C.3
Li, G.4
Liu, J.5
Chen, X.6
Yang, C.7
-
121
-
-
84973573504
-
Efficient piezoelectric energy harvesters utilizing (001) textured bimorph PZT films on flexible metal foils
-
Jun
-
H. G. Yeo, X. Ma, C. Rahn, and S. Trolier-McKinstry, "Efficient piezoelectric energy harvesters utilizing (001) textured bimorph PZT films on flexible metal foils," Adv. Funct. Mater., vol. 26, no. 32, pp. 5940-5946, Jun. 2016.
-
(2016)
Adv. Funct. Mater.
, vol.26
, Issue.32
, pp. 5940-5946
-
-
Yeo, H.G.1
Ma, X.2
Rahn, C.3
Trolier-McKinstry, S.4
-
122
-
-
84959471852
-
Highly piezoelectric MgZr co-doped aluminum nitride-based vibrational energy harvesters [correspondence]
-
Nov
-
L. Van Minh, M. Hara, T. Yokoyama, T. Nishihara, M. Ueda, and H. Kuwano, "Highly piezoelectric MgZr co-doped aluminum nitride-based vibrational energy harvesters [correspondence]," IEEE Trans. Ultrason., Ferroelectr., Freq. Control, vol. 62, no. 11, pp. 2005-2008, Nov. 2015.
-
(2015)
IEEE Trans. Ultrason., Ferroelectr., Freq. Control
, vol.62
, Issue.11
, pp. 2005-2008
-
-
Van Minh, L.1
Hara, M.2
Yokoyama, T.3
Nishihara, T.4
Ueda, M.5
Kuwano, H.6
-
123
-
-
84928911791
-
Performance enhancement of piezoelectric energy harvesters using multilayer and multistep beam configurations
-
Jun
-
R. Sriramdas, S. Chiplunkar, R. M. Cuduvally, and R. Pratap, "Performance enhancement of piezoelectric energy harvesters using multilayer and multistep beam configurations," IEEE Sensors J., vol. 15, no. 6, pp. 3338-3348, Jun. 2015.
-
(2015)
IEEE Sensors J.
, vol.15
, Issue.6
, pp. 3338-3348
-
-
Sriramdas, R.1
Chiplunkar, S.2
Cuduvally, R.M.3
Pratap, R.4
-
124
-
-
84989833329
-
Bi-resonant structure with piezoelectric PVDF films for energy harvesting from random vibration sources at low frequency
-
Aug. [Online]
-
S. Li, A. Crovetto, Z. Peng, A. Zhang, O. Hansen, M. Wang, X. Li, and F. Wang, "Bi-resonant structure with piezoelectric PVDF films for energy harvesting from random vibration sources at low frequency," Sens. Actuators A, Phys., vol. 247, pp. 547-554, Aug. 2016. [Online]. Available: http://www.sciencedirect.com/science/article/pii/S0924424716303211
-
(2016)
Sens. Actuators A, Phys.
, vol.247
, pp. 547-554
-
-
Li, S.1
Crovetto, A.2
Peng, Z.3
Zhang, A.4
Hansen, O.5
Wang, M.6
Li, X.7
Wang, F.8
-
125
-
-
84925708838
-
The effects of width reduction on the damping of a cantilever beam and its application in increasing the harvesting power of piezoelectric energy harvester
-
Feb
-
J. Dayou, J. Kim, J. Im, L. Zhai, A. T. C. How, and W. Y. H. Liew, "The effects of width reduction on the damping of a cantilever beam and its application in increasing the harvesting power of piezoelectric energy harvester," Smart Mater. Struct., vol. 24, no. 4, Feb. 2015, Art. no. 045006. doi: 10.1088%2F0964-1726%2F24%2F4%2F045006.
-
(2015)
Smart Mater. Struct.
, vol.24
, Issue.4
-
-
Dayou, J.1
Kim, J.2
Im, J.3
Zhai, L.4
How, A.T.C.5
Liew, W.Y.H.6
-
126
-
-
85066455554
-
Thermodynamic approach to tailor porosity in piezoelectric polymer fibers for application in nanogenerators
-
Aug. [Online]
-
M. M. Abolhasani, M. Naebe, K. Shirvanimoghaddam, H. Fashandi, H. Khayyam, M. Joordens, A. Pipertzis, S. Anwar, R. Berger, G. Floudas, J. Michels, and K. Asadi, "Thermodynamic approach to tailor porosity in piezoelectric polymer fibers for application in nanogenerators," Nano Energy, vol. 62, pp. 594-600, Aug. 2019. [Online]. Available: http://www.sciencedirect.com/science/article/pii/S2211285519304501
-
(2019)
Nano Energy
, vol.62
, pp. 594-600
-
-
Abolhasani, M.M.1
Naebe, M.2
Shirvanimoghaddam, K.3
Fashandi, H.4
Khayyam, H.5
Joordens, M.6
Pipertzis, A.7
Anwar, S.8
Berger, R.9
Floudas, G.10
Michels, J.11
Asadi, K.12
-
127
-
-
84953792301
-
Flexible nanogenerators for energy harvesting and self-powered electronics
-
F. R. Fan, W. Tang, and Z. L. Wang, "Flexible nanogenerators for energy harvesting and self-powered electronics," Adv. Mater., vol. 28, no. 22, pp. 4283-4305, 2016.
-
(2016)
Adv. Mater.
, vol.28
, Issue.22
, pp. 4283-4305
-
-
Fan, F.R.1
Tang, W.2
Wang, Z.L.3
-
128
-
-
77953310763
-
-
Nano Lett.
-
X. Chen, S. Xu, N. Yao, and Y. Shi, "1.6 V nanogenerator for mechanical energy harvesting using PZT nanofibers," Nano Lett., vol. 10, no. 6, pp. 2133-2137, 2010.
-
(2010)
1.6 v nanogenerator for mechanical energy harvesting using PZT nanofibers
, vol.10
, Issue.6
, pp. 2133-2137
-
-
Chen, X.1
Xu, S.2
Yao, N.3
Shi, Y.4
-
129
-
-
33645810366
-
Piezoelectric nanogenerators based on zinc oxide nanowire arrays
-
Apr
-
Z. L. Wang and J. Song, "Piezoelectric nanogenerators based on zinc oxide nanowire arrays," Science, vol. 312, pp. 242-246, Apr. 2006.
-
(2006)
Science
, vol.312
, pp. 242-246
-
-
Wang, Z.L.1
Song, J.2
-
130
-
-
78049352004
-
Sound-driven piezoelectric nanowire-based nanogenera-tors
-
S. N. Cha, J.-S. Seo, S. M. Kim, H. J. Kim, Y. J. Park, S.-W. Kim, and J. M. Kim, "Sound-driven piezoelectric nanowire-based nanogenera-tors," Adv. Mater., vol. 22, no. 42, pp. 4726-4730, 2010.
-
(2010)
Adv. Mater.
, vol.22
, Issue.42
, pp. 4726-4730
-
-
Cha, S.N.1
Seo, J.-S.2
Kim, S.M.3
Kim, H.J.4
Park, Y.J.5
Kim, S.-W.6
Kim, J.M.7
-
131
-
-
84940512625
-
Promising piezoelectric properties of new ZnO octadecylamine adduct
-
S. Bettini, R. Pagano, V. Bonfrate, E. Maglie, D. Manno, A. Serra, L. Valli, and G. Giancane, "Promising piezoelectric properties of new ZnO octadecylamine adduct," J. Phys. Chem. C, vol. 119, no. 34, pp. 20143-20149, 2015.
-
(2015)
J. Phys. Chem. C
, vol.119
, Issue.34
, pp. 20143-20149
-
-
Bettini, S.1
Pagano, R.2
Bonfrate, V.3
Maglie, E.4
Manno, D.5
Serra, A.6
Valli, L.7
Giancane, G.8
-
132
-
-
77952992382
-
Fully rollable transparent nanogenerators based on graphene electrodes
-
D. Choi, M.-Y. Choi, W. M. Choi, H.-J. Shin, H.-K. Park, J.-S. Seo, J. Park, S.-M. Yoon, S. J. Chae, Y. H. Lee, S.-W. Kim, J.-Y. Choi, S. Y. Lee, and J. M. Kim, "Fully rollable transparent nanogenerators based on graphene electrodes," Adv. Mater., vol. 22, no. 19, pp. 2187-2192, 2010.
-
(2010)
Adv. Mater.
, vol.22
, Issue.19
, pp. 2187-2192
-
-
Choi, D.1
Choi, M.-Y.2
Choi, W.M.3
Shin, H.-J.4
Park, H.-K.5
Seo, J.-S.6
Park, J.7
Yoon, S.-M.8
Chae, S.J.9
Lee, Y.H.10
Kim, S.-W.11
Choi, J.-Y.12
Lee, S.Y.13
Kim, J.M.14
-
133
-
-
77952988075
-
Electricity generation based on one-dimensional group-III nitride nanomaterials
-
X. Wang, J. Song, F. Zhang, C. He, Z. Hu, and Z. Wang, "Electricity generation based on one-dimensional group-III nitride nanomaterials," Adv. Mater., vol. 22, no. 19, pp. 2155-2158, 2010.
-
(2010)
Adv. Mater.
, vol.22
, Issue.19
, pp. 2155-2158
-
-
Wang, X.1
Song, J.2
Zhang, F.3
He, C.4
Hu, Z.5
Wang, Z.6
-
134
-
-
54949096975
-
Alternating the output of a CdS nanowire nanogenerator by a white-light-stimulated optoelectronic effect
-
Y.-F. Lin, J. Song, Y. Ding, S.-Y. Lu, and Z. L. Wang, "Alternating the output of a CdS nanowire nanogenerator by a white-light-stimulated optoelectronic effect," Adv. Mater., vol. 20, no. 16, pp. 3127-3130, 2008.
-
(2008)
Adv. Mater.
, vol.20
, Issue.16
, pp. 3127-3130
-
-
Lin, Y.-F.1
Song, J.2
Ding, Y.3
Lu, S.-Y.4
Wang, Z.L.5
-
135
-
-
65249147681
-
ZnO-ZnS heterojunction and ZnS nanowire arrays for electricity generation
-
M.-Y. Lu, J. Song, M.-P. Lu, C.-Y. Lee, L.-J. Chen, and Z. L. Wang, "ZnO-ZnS heterojunction and ZnS nanowire arrays for electricity generation," ACS Nano, vol. 3, no. 2, pp. 357-362, 2009.
-
(2009)
ACS Nano
, vol.3
, Issue.2
, pp. 357-362
-
-
Lu, M.-Y.1
Song, J.2
Lu, M.-P.3
Lee, C.-Y.4
Chen, L.-J.5
Wang, Z.L.6
-
136
-
-
84898809175
-
Novel '3-D spacer' all fibre piezoelectric textiles for energy harvesting applications
-
N. Soin, T. H. Shah, S. C. Anand, J. Geng, W. Pornwannachai, P. Mandal, D. Reid, S. Sharma, R. L. Hadimani, and D. V. Bayramol, "Novel '3-D spacer' all fibre piezoelectric textiles for energy harvesting applications," Energy Environ. Sci., vol. 7, no. 5, pp. 1670-1679, 2014.
-
(2014)
Energy Environ. Sci.
, vol.7
, Issue.5
, pp. 1670-1679
-
-
Soin, N.1
Shah, T.H.2
Anand, S.C.3
Geng, J.4
Pornwannachai, W.5
Mandal, P.6
Reid, D.7
Sharma, S.8
Hadimani, R.L.9
Bayramol, D.V.10
-
137
-
-
84882409752
-
Highly durable all-fiber nanogenerator for mechanical energy harvesting
-
W. Zeng, X.-M. Tao, S. Chen, S. Shang, H. L. W. Chan, and S. H. Choy, "Highly durable all-fiber nanogenerator for mechanical energy harvesting," Energy Environ. Sci., vol. 6, no. 9, pp. 2631-2638, 2013.
-
(2013)
Energy Environ. Sci.
, vol.6
, Issue.9
, pp. 2631-2638
-
-
Zeng, W.1
Tao, X.-M.2
Chen, S.3
Shang, S.4
Chan, H.L.W.5
Choy, S.H.6
-
138
-
-
84871266723
-
Highly sensitive stretchable transparent piezoelectric nanogenerators
-
J.-H. Lee, K. Y. Lee, B. Kumar, N. T. Tien, N.-E. Lee, and S.-W. Kim, "Highly sensitive stretchable transparent piezoelectric nanogenerators," Energy Environ. Sci., vol. 6, no. 1, pp. 169-175, 2013.
-
(2013)
Energy Environ. Sci.
, vol.6
, Issue.1
, pp. 169-175
-
-
Lee, J.-H.1
Lee, K.Y.2
Kumar, B.3
Tien, N.T.4
Lee, N.-E.5
Kim, S.-W.6
-
139
-
-
84998980206
-
PVDF/graphene composite nanofibers with enhanced piezoelectric performance for development of robust nanogenerators
-
Jan
-
M. M. Abolhasani, K. Shirvanimoghaddam, and M. Naebe, "PVDF/graphene composite nanofibers with enhanced piezoelectric performance for development of robust nanogenerators," Compos. Sci. Technol., vol. 138, pp. 49-56, Jan. 2017.
-
(2017)
Compos. Sci. Technol.
, vol.138
, pp. 49-56
-
-
Abolhasani, M.M.1
Shirvanimoghaddam, K.2
Naebe, M.3
-
140
-
-
84900828282
-
A new approach for mechanisms of ferroelectric crystalline phase formation in PVDF nanocompos-ites
-
M. M. Abolhasani, M. Naebe, and Q. Guo, "A new approach for mechanisms of ferroelectric crystalline phase formation in PVDF nanocompos-ites," Phys. Chem. Chem. Phys., vol. 16, no. 22, pp. 10679-10687, 2014.
-
(2014)
Phys. Chem. Chem. Phys.
, vol.16
, Issue.22
, pp. 10679-10687
-
-
Abolhasani, M.M.1
Naebe, M.2
Guo, Q.3
-
141
-
-
84920606161
-
Different thermal analysis technique application in determination of fold surface-free energy
-
M. M. Abolhasani, M. R. Abadchi, K. Magniez, and Q. Guo, "Different thermal analysis technique application in determination of fold surface-free energy," J. Therm. Anal. Calorimetry, vol. 119, no. 1, pp. 527-536, 2015.
-
(2015)
J. Therm. Anal. Calorimetry
, vol.119
, Issue.1
, pp. 527-536
-
-
Abolhasani, M.M.1
Abadchi, M.R.2
Magniez, K.3
Guo, Q.4
-
142
-
-
33746310584
-
Modeling and testing of PZT and PVDF piezoelectric wafer active sensors
-
B. Lin and V. Giurgiutiu, "Modeling and testing of PZT and PVDF piezoelectric wafer active sensors," Smart Mater. Struct., vol. 15, no. 4, p. 1085, 2006.
-
(2006)
Smart Mater. Struct.
, vol.15
, Issue.4
, pp. 1085
-
-
Lin, B.1
Giurgiutiu, V.2
-
143
-
-
10844227201
-
Comparisons between PZT and PVDF thick films technologies in the design of low-cost pyroelectric sensors
-
L. Capineri, L. Masotti, V. Ferrari, D. Marioli, A. Taroni, and M. Mazzoni, "Comparisons between PZT and PVDF thick films technologies in the design of low-cost pyroelectric sensors," Rev. Sci. Instrum., vol. 75, no. 11, pp. 4906-4910, 2004.
-
(2004)
Rev. Sci. Instrum.
, vol.75
, Issue.11
, pp. 4906-4910
-
-
Capineri, L.1
Masotti, L.2
Ferrari, V.3
Marioli, D.4
Taroni, A.5
Mazzoni, M.6
-
144
-
-
0010617220
-
The measurement of the shear piezoelectric coefficients of polyvinylidene fluoride
-
E. L. Nix and I. M. Ward, "The measurement of the shear piezoelectric coefficients of polyvinylidene fluoride," Ferroelectrics, vol. 67, no. 1, pp. 137-141, 1986.
-
(1986)
Ferroelectrics
, vol.67
, Issue.1
, pp. 137-141
-
-
Nix, E.L.1
Ward, I.M.2
-
145
-
-
84994226168
-
Preparation and piezoelectric investigation of electrospun polyvinylidene fluoride fibrous membrane
-
R. Fu, S. Chen, Y. Lin, Y. He, and Y. Gu, "Preparation and piezoelectric investigation of electrospun polyvinylidene fluoride fibrous membrane," J. Nanosci. Nanotechnol., vol. 16, no. 12, pp. 12337-12343, 2016.
-
(2016)
J. Nanosci. Nanotechnol.
, vol.16
, Issue.12
, pp. 12337-12343
-
-
Fu, R.1
Chen, S.2
Lin, Y.3
He, Y.4
Gu, Y.5
-
146
-
-
84884239268
-
Enhanced power output of an electrospun PVDF/MWCNTs-based nanogenerator by tuning its conductivity
-
H. Yu, T. Huang, M. Lu, M. Mao, Q. Zhang, and H. Wang, "Enhanced power output of an electrospun PVDF/MWCNTs-based nanogenerator by tuning its conductivity," Nanotechnology, vol. 24, no. 40, 2013, Art. no. 405401.
-
(2013)
Nanotechnology
, vol.24
, Issue.40
-
-
Yu, H.1
Huang, T.2
Lu, M.3
Mao, M.4
Zhang, Q.5
Wang, H.6
-
147
-
-
84881152150
-
Fabrication and characterization of highly efficient flexible energy harvesters using PVDF-graphene nanocomposites
-
M. A. Rahman, B.-C. Lee, D.-T. Phan, and G.-S. Chung, "Fabrication and characterization of highly efficient flexible energy harvesters using PVDF-graphene nanocomposites," Smart Mater. Struct., vol. 22, no. 8, 2013, Art. no. 085017.
-
(2013)
Smart Mater. Struct.
, vol.22
, Issue.8
-
-
Rahman, M.A.1
Lee, B.-C.2
Phan, D.-T.3
Chung, G.-S.4
-
148
-
-
84875801014
-
Evaluation of piezoelectric property of reduced graphene oxide (rGO)-poly(vinylidene fluoride) nanocomposites
-
Alamusi, J. Xue, L. Wu, N. Hu, J. Qiu, C. Chang, S. Atobe, H. Fukunaga, T. Watanabe, Y. Liu, H. Ning, J. Li, Y. Li, and Y. Zhao, "Evaluation of piezoelectric property of reduced graphene oxide (rGO)-poly(vinylidene fluoride) nanocomposites," Nanoscale, vol. 4, no. 22, pp. 7250-7255, 2012.
-
(2012)
Nanoscale
, vol.4
, Issue.22
, pp. 7250-7255
-
-
Xue, A.J.1
Wu, L.2
Hu, N.3
Qiu, J.4
Chang, C.5
Atobe, S.6
Fukunaga, H.7
Watanabe, T.8
Liu, Y.9
Ning, H.10
Li, J.11
Li, Y.12
Zhao, Y.13
-
149
-
-
84887098698
-
Enhanced frequency response of a highly transparent PVDF-graphene based thin film acoustic actuator
-
J. S. Lee, K.-Y. Shin, C. Kim, and J. Jang, "Enhanced frequency response of a highly transparent PVDF-graphene based thin film acoustic actuator," Chem. Commun., vol. 49, no. 94, pp. 11047-11049, 2013.
-
(2013)
Chem. Commun.
, vol.49
, Issue.94
, pp. 11047-11049
-
-
Lee, J.S.1
Shin, K.-Y.2
Kim, C.3
Jang, J.4
-
150
-
-
84922777429
-
Improved energy harvesting capability of poly(vinylidene fluoride) films modified by reduced graphene oxide
-
L. Wu, Alamusi, J. Xue, T. Itoi, N. Hu, Y. Li, C. Yan, J. Qiu, H. Ning, W. Yuan, and B. Gu, "Improved energy harvesting capability of poly(vinylidene fluoride) films modified by reduced graphene oxide," J. Intell. Mater. Syst. Struct., vol. 25, no. 14, pp. 1813-1824, 2014.
-
(2014)
J. Intell. Mater. Syst. Struct.
, vol.25
, Issue.14
, pp. 1813-1824
-
-
Wu, L.1
Xue, A.J.2
Itoi, T.3
Hu, N.4
Li, Y.5
Yan, C.6
Qiu, J.7
Ning, H.8
Yuan, W.9
Gu, B.10
-
151
-
-
65649129289
-
Functionalized graphene sheet- Poly(vinylidene fluoride) conductive nanocomposites
-
S. Ansari and E. P. Giannelis, "Functionalized graphene sheet- Poly(vinylidene fluoride) conductive nanocomposites," J. Polym. Sci. B, Polym. Phys., vol. 47, no. 9, pp. 888-897, 2009.
-
(2009)
J. Polym. Sci. B, Polym. Phys.
, vol.47
, Issue.9
, pp. 888-897
-
-
Ansari, S.1
Giannelis, E.P.2
-
152
-
-
78149415915
-
Physical and mechanical properties of poly(methyl methacrylate)-functionalized graphene/poly(vinylidine fluoride) nanocomposites: Piezoelectric f polymorph formation
-
R. K. Layek, S. Samanta, D. P. Chatterjee, and A. K. Nandi, "Physical and mechanical properties of poly(methyl methacrylate)-functionalized graphene/poly(vinylidine fluoride) nanocomposites: Piezoelectric f polymorph formation," Polymer, vol. 51, no. 24, pp. 5846-5856, 2010.
-
(2010)
Polymer
, vol.51
, Issue.24
, pp. 5846-5856
-
-
Layek, R.K.1
Samanta, S.2
Chatterjee, D.P.3
Nandi, A.K.4
-
153
-
-
84978933839
-
Sound absorption of electrospun polyvinylidene fluoride/graphene membranes
-
Sep
-
C. M. Wu and M. H. Chou, "Sound absorption of electrospun polyvinylidene fluoride/graphene membranes," Eur. Polym. J., vol. 82, pp. 35-45, Sep. 2016.
-
(2016)
Eur. Polym. J.
, vol.82
, pp. 35-45
-
-
Wu, C.M.1
Chou, M.H.2
-
154
-
-
85057444974
-
Advances in piezoelectric polymer composites for energy harvesting applications: A systematic review
-
S. Mishra, L. Unnikrishnan, S. K. Nayak, and S. Mohanty, "Advances in piezoelectric polymer composites for energy harvesting applications: A systematic review," Macromol. Mater. Eng., vol. 304, no. 1, 2019, Art. no. 1800463.
-
(2019)
Macromol. Mater. Eng.
, vol.304
, Issue.1
-
-
Mishra, S.1
Unnikrishnan, L.2
Nayak, S.K.3
Mohanty, S.4
-
155
-
-
85045085172
-
High-performance piezoelectric energy harvesters and their applications
-
Z. Yang, S. Zhou, J. Zu, and D. Inman, "High-performance piezoelectric energy harvesters and their applications," Joule, vol. 2, no. 4, pp. 642-697, 2018.
-
(2018)
Joule
, vol.2
, Issue.4
, pp. 642-697
-
-
Yang, Z.1
Zhou, S.2
Zu, J.3
Inman, D.4
-
156
-
-
85070210725
-
-
Avnet. [Online]
-
Avnet. (2016). Powering the Internet ofThings Via Energy Harvesting. [Online]. Available: http://design.avnet.com/axiom/powering-the-internet-of-things-via-energy-harvesting/
-
(2016)
Powering the Internet OfThings Via Energy Harvesting
-
-
-
157
-
-
84982141298
-
Online energy harvesting prediction in environmentally powered wireless sensor networks
-
Sep
-
A. Cammarano, C. Petrioli, and D. Spenza, "Online energy harvesting prediction in environmentally powered wireless sensor networks," IEEE Sensors J., vol. 16, no. 17, pp. 6793-6804, Sep. 2016.
-
(2016)
IEEE Sensors J.
, vol.16
, Issue.17
, pp. 6793-6804
-
-
Cammarano, A.1
Petrioli, C.2
Spenza, D.3
-
158
-
-
70350749765
-
Prediction and management in energy harvested wireless sensor nodes
-
May
-
J. R. Piorno, C. Bergonzini, D. Atienza, and T. S. Rosing, "Prediction and management in energy harvested wireless sensor nodes," in Proc. 1st Int. Conf. Wireless Commun., Veh. Technol., Inf. Theory Aerosp. Electron. Syst. Technol., May 2009, pp. 6-10.
-
(2009)
Proc. 1st Int. Conf. Wireless Commun., Veh. Technol., Inf. Theory Aerosp. Electron. Syst. Technol.
, pp. 6-10
-
-
Piorno, J.R.1
Bergonzini, C.2
Atienza, D.3
Rosing, T.S.4
-
159
-
-
70449426701
-
Algorithms for harvested energy prediction in batteryless wireless sensor networks
-
Jun
-
C. Bergonzini, D. Brunelli, and L. Benini, "Algorithms for harvested energy prediction in batteryless wireless sensor networks," in Proc. 3rd Int. Workshop Adv. Sensors Interfaces, Jun. 2009, pp. 144-149.
-
(2009)
Proc. 3rd Int. Workshop Adv. Sensors Interfaces
, pp. 144-149
-
-
Bergonzini, C.1
Brunelli, D.2
Benini, L.3
-
160
-
-
77955103680
-
Cloudy computing: Leveraging weather forecasts in energy harvesting sensor systems
-
Jun
-
N. Sharma, J. Gummeson, D. Irwin, and P. Shenoy, "Cloudy computing: Leveraging weather forecasts in energy harvesting sensor systems," in Proc. 7th Annu. IEEE Commun. Soc. Conf. Sensor, Mesh Ad Hoc Commun. Netw. (SECON), Jun. 2010, pp. 1-9.
-
(2010)
Proc. 7th Annu. IEEE Commun. Soc. Conf. Sensor, Mesh Ad Hoc Commun. Netw. (SECON)
, pp. 1-9
-
-
Sharma, N.1
Gummeson, J.2
Irwin, D.3
Shenoy, P.4
-
161
-
-
77951293654
-
Optimal energy management policies for energy harvesting sensor nodes
-
Apr
-
V. Sharma, U. Mukherji, V. Joseph, and S. Gupta, "Optimal energy management policies for energy harvesting sensor nodes," IEEE Trans. Wireless Commun., vol. 9, no. 4, pp. 1326-1336, Apr. 2010.
-
(2010)
IEEE Trans. Wireless Commun.
, vol.9
, Issue.4
, pp. 1326-1336
-
-
Sharma, V.1
Mukherji, U.2
Joseph, V.3
Gupta, S.4
-
162
-
-
84916937063
-
Demonstration of energy-neutral operation on a WSN testbed using vibration energy harvesting
-
May
-
S. Baghaee, S. Chamanian, H. Ulusan, O. Zorlu, E. Uysal-Biyikoglu, and H. Kulah, "Demonstration of energy-neutral operation on a WSN testbed using vibration energy harvesting," in Proc. 20th Eur. Wireless Conf. Eur. Wireless, May 2014, pp. 1-6.
-
(2014)
Proc. 20th Eur. Wireless Conf. Eur. Wireless
, pp. 1-6
-
-
Baghaee, S.1
Chamanian, S.2
Ulusan, H.3
Zorlu, O.4
Uysal-Biyikoglu, E.5
Kulah, H.6
-
163
-
-
85070226238
-
-
Cypress Core&Code. [Online]
-
Cypress Core&Code. (2015). Energy-Harvesting Devices Replace Batteries in IoT Sensors. [Online]. Available: http://core.spansion.com/article/energy-harvesting-devices-replace-batteries-in-iot-sensors/#.WCkfFC195aQ
-
(2015)
Energy-Harvesting Devices Replace Batteries in IoT Sensors
-
-
-
164
-
-
85013250305
-
Joint energy replenishment and operation scheduling in wireless rechargeable sensor networks
-
Feb
-
Y. Shu, K. G. Shin, J. Chen, and Y. Sun, "Joint energy replenishment and operation scheduling in wireless rechargeable sensor networks," IEEE Trans. Ind. Informat. , vol. 13, no. 1, pp. 125-134, Feb. 2017.
-
(2017)
IEEE Trans. Ind. Informat.
, vol.13
, Issue.1
, pp. 125-134
-
-
Shu, Y.1
Shin, K.G.2
Chen, J.3
Sun, Y.4
-
165
-
-
65549160084
-
Energy Management in Wireless Sensor Networks with Energy-hungry Sensors
-
Apr
-
C. Alippi, G. Anastasi, M. Di Francesco, and M. Roveri, "Energy management in wireless sensor networks with energy-hungry sensors," IEEE lustrum. Meas. Mag., vol. 12, no. 2, pp. 16-23, Apr. 2009.
-
(2009)
IEEE Lustrum. Meas. Mag.
, vol.12
, Issue.2
, pp. 16-23
-
-
Alippi, C.1
Anastasi, G.2
Di Francesco, M.3
Roveri, M.4
-
166
-
-
84970024622
-
Energy-balanced cooperative transmission based on relay selection and power control in energy harvesting wireless sensor network
-
Jul
-
D. Zhang, Z. Chen, H. Zhou, L. Chen, and X. Shen, "Energy-balanced cooperative transmission based on relay selection and power control in energy harvesting wireless sensor network," Comput. Netw., vol. 104, pp. 189-197, Jul. 2016.
-
(2016)
Comput. Netw.
, vol.104
, pp. 189-197
-
-
Zhang, D.1
Chen, Z.2
Zhou, H.3
Chen, L.4
Shen, X.5
-
167
-
-
84979539021
-
Goodput optimization via dynamic frame length and charging time adaptation for backscatter communication
-
May
-
Y. Li, L. Fu, Y. Ying, Y. Sun, K. Chi, and Y. Zhu, "Goodput optimization via dynamic frame length and charging time adaptation for backscatter communication," Peer-Peer Netw. Appl., vol. 10, no. 3, pp. 440-452, May 2017.
-
(2017)
Peer-Peer Netw. Appl.
, vol.10
, Issue.3
, pp. 440-452
-
-
Li, Y.1
Fu, L.2
Ying, Y.3
Sun, Y.4
Chi, K.5
Zhu, Y.6
-
168
-
-
84921615865
-
Energy harvesting aware topology control with power adaptation in wireless sensor networks
-
Apr
-
Q. Tan, W. An, Y. Han, Y. Liu, S. Ci, F.-M. Shao, and H. Tang, "Energy harvesting aware topology control with power adaptation in wireless sensor networks," Ad Hoc Netw., vol. 27, pp. 44-56, Apr. 2015.
-
(2015)
Ad Hoc Netw.
, vol.27
, pp. 44-56
-
-
Tan, Q.1
An, W.2
Han, Y.3
Liu, Y.4
Ci, S.5
Shao, F.-M.6
Tang, H.7
-
169
-
-
84938109229
-
-
Battery University. [Online]
-
Battery University. (2019). BU-209: How Does a Superca-pacitor Work?. [Online]. Available: https://batteryuniversity.com/learn/article/whats-the-role-of-the-supercapacitor
-
(2019)
BU-209: How Does A Superca-pacitor Work?
-
-
-
170
-
-
84994591094
-
Surfing the high energy output branch of nonlinear energy harvesters
-
D. Mallick, A. Amann, and S. Roy, "Surfing the high energy output branch of nonlinear energy harvesters," Phys. Rev. Lett. , vol. 117, no. 19, 2016, Art. no. 197701.
-
(2016)
Phys. Rev. Lett.
, vol.117
, Issue.19
-
-
Mallick, D.1
Amann, A.2
Roy, S.3
-
171
-
-
84862924167
-
Design optimization of piezoelectric energy harvester subject to tip excitation
-
Jan
-
J. Park, S. Lee, and B. M. Kwak, "Design optimization of piezoelectric energy harvester subject to tip excitation," J. Mech. Sci. Technol., vol. 26, no. 1, pp. 137-143, Jan. 2012.
-
(2012)
J. Mech. Sci. Technol.
, vol.26
, Issue.1
, pp. 137-143
-
-
Park, J.1
Lee, S.2
Kwak, B.M.3
-
172
-
-
78649237429
-
Improving the performance of a piezoelectric energy harvester using a variable thickness beam
-
S. Paquin and Y. St-Amant, "Improving the performance of a piezoelectric energy harvester using a variable thickness beam," Smart Mater. Struct. , vol. 19, no. 10, 2010, Art. no. 105020.
-
(2010)
Smart Mater. Struct.
, vol.19
, Issue.10
-
-
Paquin, S.1
St-Amant, Y.2
-
173
-
-
84891123022
-
Design and performance of variable-shaped piezoelectric energy harvesters
-
Jan
-
S. B. Ayed, A. Abdelkefi, F. Najar, and M. R. Hajj, "Design and performance of variable-shaped piezoelectric energy harvesters," J. Intell. Mater. Syst. Struct., vol. 25, no. 2, pp. 174-186, Jan. 2014.
-
(2014)
J. Intell. Mater. Syst. Struct.
, vol.25
, Issue.2
, pp. 174-186
-
-
Ayed, S.B.1
Abdelkefi, A.2
Najar, F.3
Hajj, M.R.4
-
174
-
-
84973369555
-
Topology optimization of piezoelectric nanostructures
-
Sep
-
S. S. Nanthakumar, T. Lahmer, X. Zhuang, H. S. Park, and T. Rabczuk, "Topology optimization of piezoelectric nanostructures," J. Mech. Phys. Solids, vol. 94, pp. 316-335, Sep. 2016.
-
(2016)
J. Mech. Phys. Solids
, vol.94
, pp. 316-335
-
-
Nanthakumar, S.S.1
Lahmer, T.2
Zhuang, X.3
Park, H.S.4
Rabczuk, T.5
-
175
-
-
84879687429
-
Topology optimization of a cantilevered piezoelectric energy harvester using stress norm constraints
-
F. Wein, M. Kaltenbacher, and M. Stingl, "Topology optimization of a cantilevered piezoelectric energy harvester using stress norm constraints," Struct. Multidisciplinary Optim. , vol. 48, no. 1, pp. 173-185, 2013.
-
(2013)
Struct. Multidisciplinary Optim.
, vol.48
, Issue.1
, pp. 173-185
-
-
Wein, F.1
Kaltenbacher, M.2
Stingl, M.3
-
176
-
-
85020288435
-
Introducing arc-shaped piezoelectric elements into energy harvesters
-
Sep
-
Z. Yang, Y. Q. Wang, L. Zuo, and J. Zu, "Introducing arc-shaped piezoelectric elements into energy harvesters," Energy Convers. Manage., vol. 148, pp. 260-266, Sep. 2017.
-
(2017)
Energy Convers. Manage.
, vol.148
, pp. 260-266
-
-
Yang, Z.1
Wang, Y.Q.2
Zuo, L.3
Zu, J.4
-
177
-
-
85026357054
-
A new electrode design method in piezoelectric vibration energy harvesters to maximize output power
-
Aug
-
S. Du, Y. Jia, S.-T. Chen, C. Zhao, B. Sun, E. Arroyo, and A. A. Seshia, "A new electrode design method in piezoelectric vibration energy harvesters to maximize output power," Sens. Actuators A, Phys. , vol. 263, pp. 693-701, Aug. 2017.
-
(2017)
Sens. Actuators A, Phys.
, vol.263
, pp. 693-701
-
-
Du, S.1
Jia, Y.2
Chen, S.-T.3
Zhao, C.4
Sun, B.5
Arroyo, E.6
Seshia, A.A.7
-
178
-
-
85028506562
-
Internet of hybrid energy harvesting things
-
Apr
-
O. B. Akan, O. Cetinkaya, C. Koca, and M. Ozger, "Internet of hybrid energy harvesting things," lEEE lnternet Things J. , vol. 5, no. 2, pp. 736-746, Apr. 2018.
-
(2018)
LEEE Lnternet Things J.
, vol.5
, Issue.2
, pp. 736-746
-
-
Akan, O.B.1
Cetinkaya, O.2
Koca, C.3
Ozger, M.4
-
179
-
-
85040048771
-
Achieving sustainable ultra-dense heterogeneous networks for 5G
-
Dec
-
J. An, K. Yang, J. Wu, N. Ye, S. Guo, and Z. Liao, "Achieving sustainable ultra-dense heterogeneous networks for 5G," lEEE Commun. Mag. , vol. 55, no. 12, pp. 84-90, Dec. 2017.
-
(2017)
LEEE Commun. Mag.
, vol.55
, Issue.12
, pp. 84-90
-
-
An, J.1
Yang, K.2
Wu, J.3
Ye, N.4
Guo, S.5
Liao, Z.6
-
180
-
-
85041006722
-
Beamforming in wireless energy harvesting communications systems: A survey
-
2nd Quart
-
Y. Alsaba, S. K. A. Rahim, and C. Y. Leow, "Beamforming in wireless energy harvesting communications systems: A survey," lEEE Commun. Surveys Tuts., vol. 20, no. 2, pp. 1329-1360, 2nd Quart., 2018.
-
(2018)
LEEE Commun. Surveys Tuts.
, vol.20
, Issue.2
, pp. 1329-1360
-
-
Alsaba, Y.1
Rahim, S.K.A.2
Leow, C.Y.3
-
181
-
-
85028923903
-
Wireless powered communication networks: Research directions and technological approaches
-
Dec
-
D. Niyato, D. I. Kim, M. Maso, and Z. Han, "Wireless powered communication networks: Research directions and technological approaches," IEEE Wireless Commun., vol. 24, no. 6, pp. 88-97, Dec. 2017.
-
(2017)
IEEE Wireless Commun.
, vol.24
, Issue.6
, pp. 88-97
-
-
Niyato, D.1
Kim, D.I.2
Maso, M.3
Han, Z.4
-
182
-
-
85056583515
-
Non-orthogonal multiple access: Achieving sustainable future radio access
-
Feb
-
K. Yang, N. Yang, N. Ye, M. Jia, Z. Gao, and R. Fan, "Non-orthogonal multiple access: Achieving sustainable future radio access," lEEE Commun. Mag., vol. 57, no. 2, pp. 116-121, Feb. 2019.
-
(2019)
LEEE Commun. Mag.
, vol.57
, Issue.2
, pp. 116-121
-
-
Yang, K.1
Yang, N.2
Ye, N.3
Jia, M.4
Gao, Z.5
Fan, R.6
-
183
-
-
85028719579
-
Cognitive-radio-based Internet of Things: Applications, architectures, spectrum related functionalities, and future research directions
-
A. A. Khan, M. H. Rehmani, and A. Rachedi, "Cognitive-radio-based Internet of Things: Applications, architectures, spectrum related functionalities, and future research directions," IEEE Wireless Commun., vol. 24, no. 3, pp. 17-25, 2017.
-
(2017)
IEEE Wireless Commun.
, vol.24
, Issue.3
, pp. 17-25
-
-
Khan, A.A.1
Rehmani, M.H.2
Rachedi, A.3
-
184
-
-
85030093486
-
Ambient backscatter: A new approach to improve network performance for RF-powered cognitive radio networks
-
Sep
-
D. T. Hoang, D. Niyato, P. Wang, D. I. Kim, and Z. Han, "Ambient backscatter: A new approach to improve network performance for RF-powered cognitive radio networks," lEEE Trans. Commun. , vol. 65, no. 9, pp. 3659-3674, Sep. 2017.
-
(2017)
LEEE Trans. Commun.
, vol.65
, Issue.9
, pp. 3659-3674
-
-
Hoang, D.T.1
Niyato, D.2
Wang, P.3
Kim, D.I.4
Han, Z.5
-
185
-
-
85062939803
-
Auction-based time scheduling for backscatter-aided RF-powered cognitive radio networks
-
Mar
-
X. Gao, P. Wang, D. Niyato, K. Yang, and J. An, "Auction-based time scheduling for backscatter-aided RF-powered cognitive radio networks," IEEE Trans. Wireless Commun., vol. 18, no. 3, pp. 1684-1697, Mar. 2019.
-
(2019)
IEEE Trans. Wireless Commun.
, vol.18
, Issue.3
, pp. 1684-1697
-
-
Gao, X.1
Wang, P.2
Niyato, D.3
Yang, K.4
An, J.5
-
186
-
-
85009956936
-
Energy-efficient power control for device-to-device communications
-
Dec
-
K. Yang, S. Martin, C. Xing, J. Wu, and R. Fan, "Energy-efficient power control for device-to-device communications," lEEE J. Sel. Areas Commun. , vol. 34, no. 12, pp. 3208-3220, Dec. 2016.
-
(2016)
LEEE J. Sel. Areas Commun.
, vol.34
, Issue.12
, pp. 3208-3220
-
-
Yang, K.1
Martin, S.2
Xing, C.3
Wu, J.4
Fan, R.5
-
187
-
-
85048613168
-
The effect of IoT new features on security and privacy: New threats, existing solutions, and challenges yet to be solved
-
Apr
-
W. Zhou, Y. Jia, A. Peng, Y. Zhang, and P. Liu, "The effect of IoT new features on security and privacy: New threats, existing solutions, and challenges yet to be solved," lEEE lnternet Things J. , vol. 6, no. 2, pp. 1606-1616, Apr. 2019.
-
(2019)
LEEE Lnternet Things J.
, vol.6
, Issue.2
, pp. 1606-1616
-
-
Zhou, W.1
Jia, Y.2
Peng, A.3
Zhang, Y.4
Liu, P.5
-
188
-
-
84961579337
-
The Internet of Things: A security point of view
-
S. Li, T. Tryfonas, and H. Li, "The Internet of Things: A security point of view," Internet Res., vol. 26, no. 2, pp. 337-359, 2016.
-
(2016)
Internet Res.
, vol.26
, Issue.2
, pp. 337-359
-
-
Li, S.1
Tryfonas, T.2
Li, H.3
-
189
-
-
85026378512
-
A survey on Internet of things: Architecture, enabling technologies, security and privacy, and applications
-
Oct
-
J. Lin, W. Yu, N. Zhang, X. Yang, H. Zhang, and W. Zhao, "A survey on Internet of things: Architecture, enabling technologies, security and privacy, and applications," lEEE lnternet Things J. , vol. 4, no. 5, pp. 1125-1142, Oct. 2017.
-
(2017)
LEEE Lnternet Things J.
, vol.4
, Issue.5
, pp. 1125-1142
-
-
Lin, J.1
Yu, W.2
Zhang, N.3
Yang, X.4
Zhang, H.5
Zhao, W.6
-
190
-
-
85065680560
-
-
Comput.community Consortium, Tech. Rep. [Online]
-
K. Fu, T. Kohno, D. Lopresti, E. Mynatt, K. Nahrstedt, S. Patel, D. Richardson, and B. Zorn, "Safety, security, and privacy threats posed by accelerating trends in the Internet of Things," Comput.community Consortium, Tech. Rep., 2017. [Online]. Available: http://cra.org/ccc/wp-content/uploads/sites/2/2017/02/Safety-Security-and-Privacy-Threats-in-IoT.pdf
-
(2017)
Safety, Security, and Privacy Threats Posed by Accelerating Trends in the Internet of Things
-
-
Fu, K.1
Kohno, T.2
Lopresti, D.3
Mynatt, E.4
Nahrstedt, K.5
Patel, S.6
Richardson, D.7
Zorn, B.8
-
191
-
-
84879225866
-
On the features and challenges of security and privacy in distributed Internet of Things
-
R. Roman, J. Zhou, and J. Lopez, "On the features and challenges of security and privacy in distributed Internet of Things," Comput. Netw. , vol. 57, no. 10, pp. 2266-2279, 2013.
-
(2013)
Comput. Netw.
, vol.57
, Issue.10
, pp. 2266-2279
-
-
Roman, R.1
Zhou, J.2
Lopez, J.3
-
192
-
-
84919372488
-
Security, privacy and trust in Internet of Things: The road ahead
-
Jan
-
S. Sicari, A. Rizzardi, L. A. Grieco, and A. Coen-Porisini, "Security, privacy and trust in Internet of Things: The road ahead," Comput. Netw. , vol. 76, pp. 146-164, Jan. 2015.
-
(2015)
Comput. Netw.
, vol.76
, pp. 146-164
-
-
Sicari, S.1
Rizzardi, A.2
Grieco, L.A.3
Coen-Porisini, A.4
-
193
-
-
85030314760
-
A survey on security and privacy issues in Internet-of-Things
-
Oct
-
Y. Yang, L. Wu, G. Yin, L. Li, and H. Zhao, "A survey on security and privacy issues in Internet-of-Things," lEEE lnternet Things J. , vol. 4, no. 5, pp. 1250-1258, Oct. 2017.
-
(2017)
LEEE Lnternet Things J.
, vol.4
, Issue.5
, pp. 1250-1258
-
-
Yang, Y.1
Wu, L.2
Yin, G.3
Li, L.4
Zhao, H.5
-
194
-
-
77950496154
-
-
IDTechEx. [Online]
-
IDTechEx. (2011). Energy Harvesting and Storage for Electronic Devices 2011-2021. [Online]. Available: http://www.idtechex.com/research/reports/energy-harvesting-and-storage-for-electronic-devices-2011-2021-000270.asp
-
(2011)
Energy Harvesting and Storage for Electronic Devices 2011- 2021
-
-
-
196
-
-
85070189062
-
-
Intel. [Online]
-
Intel. (2017). Guide to loT. [Online]. Available: http://www.intel.com/content/www/us/en/internet-of-things/infographics/guide-to-iot.html
-
(2017)
Guide to LoT
-
-
-
199
-
-
85070212370
-
-
Trancparancy Market Research. [Online]
-
Trancparancy Market Research. (2017). Piezoelectric Energy Harvesting Market-Global Industry Analysis, Size, Share, Trends, Analysis, Growth and Forecast, 2016-2023. [Online]. Available: https://www.transparencymarketresearch.com/piezoelectric-energy-harvesting-market.html
-
(2017)
Piezoelectric Energy Harvesting Market-Global Industry Analysis, Size, Share, Trends, Analysis, Growth and Forecast 2016- 2023
-
-
|