-
1
-
-
27744534165
-
Two-dimensional gas of massless Dirac fermions in graphene
-
[1] Novoselov, K.S.; Geim, A.K.; Morozov, S.V.; Jiang, D.; Katsnelson, M.I.; Grigorieva, I.V.; Dubonos, S.V.; Firsov A.A. Two-dimensional gas of massless Dirac fermions in graphene. Nature, 2005, 438, 197-200.
-
(2005)
Nature
, vol.438
, pp. 197-200
-
-
Novoselov, K.S.1
Geim, A.K.2
Morozov, S.V.3
Jiang, D.4
Katsnelson, M.I.5
Grigorieva, I.V.6
Dubonos, S.V.7
Firsov, A.A.8
-
2
-
-
27744475163
-
Experimental observation of the quantum Hall effect and Berry's phase in graphene
-
[2] Zhang, Y.; Tan, Y.W.; Stormer, H.L.; Kim, P. Experimental observation of the quantum Hall effect and Berry's phase in graphene. Nature, 2005, 438, 201-204.
-
(2005)
Nature
, vol.438
, pp. 201-204
-
-
Zhang, Y.1
Tan, Y.W.2
Stormer, H.L.3
Kim, P.4
-
3
-
-
78649487921
-
Growth of graphene from solid carbon sources
-
[3] Sun, Z.; Yan, Z.; Yao, J.; Beitler, E.; Zhu, Y.; Tour, J.M. Growth of graphene from solid carbon sources. Nature, 2010, 468, 549-552.
-
(2010)
Nature
, vol.468
, pp. 549-552
-
-
Sun, Z.1
Yan, Z.2
Yao, J.3
Beitler, E.4
Zhu, Y.5
Tour, J.M.6
-
4
-
-
33750459007
-
Raman spectrum of graphene and graphene layers
-
[4] Ferrari, A.C.; Meyer, J.C.; Scardaci, V.; Casiraghi, C.; Lazzeri, M.; Mauri, F.; Piscanec, S.; Jiang, D.; Novoselov, K.S.; Roth, S.; Geim, A.K. Raman spectrum of graphene and graphene layers. Phys. Rev. Lett., 2006, 97, 187401-187404.
-
(2006)
Phys. Rev. Lett
, vol.97
, pp. 187401-187404
-
-
Ferrari, A.C.1
Meyer, J.C.2
Scardaci, V.3
Casiraghi, C.4
Lazzeri, M.5
Mauri, F.6
Piscanec, S.7
Jiang, D.8
Novoselov, K.S.9
Roth, S.10
Geim, A.K.11
-
5
-
-
77952911108
-
Continuous, highly flexible, and transparent graphene films by chemical vapor deposition for organic photovoltaics
-
[5] Gomez De Arco, L.; Zhang, Y.; Schlenker, C.W.; Ryu, K.; Thompson, M.E.; Zhou, C. Continuous, highly flexible, and transparent graphene films by chemical vapor deposition for organic photovoltaics. ACS Nano, 2010, 4, 2865-2873.
-
(2010)
ACS Nano
, vol.4
, pp. 2865-2873
-
-
Gomez De Arco, L.1
Zhang, Y.2
Schlenker, C.W.3
Ryu, K.4
Thompson, M.E.5
Zhou, C.6
-
6
-
-
33846888290
-
Ballistic transport in graphene nanostrips in the presence of disorder:_ Importance of edge effects
-
[6] Areshkin, D.A.; Gunlycke, D.; White, C.T. Ballistic transport in graphene nanostrips in the presence of disorder:_ Importance of edge effects. Nano Lett., 2007, 7, 204-210.
-
(2007)
Nano Lett
, vol.7
, pp. 204-210
-
-
Areshkin, D.A.1
Gunlycke, D.2
White, C.T.3
-
7
-
-
60349097486
-
Operation of graphene transistors at gigahertz frequencies
-
[7] Lin, Y.M.; Jenkins, K.A.; Valdes-Garcia, A.; Small, J.P.; Farmer, D.B.; Avouris, P. Operation of graphene transistors at gigahertz frequencies. Nano Lett., 2009, 9, 422-426.
-
(2009)
Nano Lett
, vol.9
, pp. 422-426
-
-
Lin, Y.M.1
Jenkins, K.A.2
Valdes-Garcia, A.3
Small, J.P.4
Farmer, D.B.5
Avouris, P.6
-
8
-
-
33847690144
-
The rise of graphene
-
[8] Geim, A.K.; Novoselov, K.S. The rise of graphene. Nat. Mater, 2007, 6, 183-191.
-
(2007)
Nat. Mater
, vol.6
, pp. 183-191
-
-
Geim, A.K.1
Novoselov, K.S.2
-
9
-
-
33947712905
-
Graphenes as potential material for electronics
-
[9] Wu, J.; Pisula, W.; Mullen, K. Graphenes as potential material for electronics. Chem. Rev., 2007, 107, 718-747.
-
(2007)
Chem. Rev
, vol.107
, pp. 718-747
-
-
Wu, J.1
Pisula, W.2
Mullen, K.3
-
10
-
-
43449107662
-
Chhowalla, M. Large-area ultrathin films of reduced graphene oxide as a transparent and flexible electronic material. Nat
-
[10] Eda, G.; Fanchini, G.; Chhowalla, M. Large-area ultrathin films of reduced graphene oxide as a transparent and flexible electronic material. Nat. Nanotechnol., 2008, 3, 270-274.
-
(2008)
Nanotechnol
, vol.3
, pp. 270-274
-
-
Eda, G.1
Fanchini, G.2
-
11
-
-
77952410071
-
Thermal transport in suspended and supported monolayer graphene grown by chemical vapor deposition
-
[11] Cai, W.; Moore, A.L.; Zhu, Y.; Li, X.; Chen, S.; Shi, L.; Ruoff, R.S. Thermal transport in suspended and supported monolayer graphene grown by chemical vapor deposition. Nano Lett., 2010, 10, 1645-1651.
-
(2010)
Nano Lett
, vol.10
, pp. 1645-1651
-
-
Cai, W.1
Moore, A.L.2
Zhu, Y.3
Li, X.4
Chen, S.5
Shi, L.6
Ruoff, R.S.7
-
12
-
-
84860354839
-
Multiplexed aptasensors and amplified DNA sensors using functionalized graphene oxide: Application for logic gate operations
-
[12] Liu, X.; Aizen, R.; Freeman, R.; Yehezkeli, O.; Willner, I. Multiplexed aptasensors and amplified DNA sensors using functionalized graphene oxide: Application for logic gate operations. ACS Nano, 2012, 6, 3553-3563.
-
(2012)
ACS Nano
, vol.6
, pp. 3553-3563
-
-
Liu, X.1
Aizen, R.2
Freeman, R.3
Yehezkeli, O.4
Willner, I.5
-
13
-
-
79960243225
-
Solution-processed graphene/MnO2 nanostructured textiles for high-performance electrochemical capacitors
-
[13] Yu, G.; Hu, L.; Vosgueritchian, M.; Wang, H.; Xie, X.; McDonough, J.R.; Cui, X.; Cui, Y.; Bao, Z. Solution-processed graphene/MnO2 nanostructured textiles for high-performance electrochemical capacitors. Nano Lett., 2011, 11, 2905-2911.
-
(2011)
Nano Lett
, vol.11
, pp. 2905-2911
-
-
Yu, G.1
Hu, L.2
Vosgueritchian, M.3
Wang, H.4
Xie, X.5
McDonough, J.R.6
Cui, X.7
Cui, Y.8
Bao, Z.9
-
14
-
-
79960237024
-
Graphene-wrapped sulfur particles as a rechargeable lithium–sulfur battery cathode material with high capacity and cycling stability
-
[14] Wang, H.; Yang, Y.; Liang, Y.; Robinson, J.T.; Li, Y.; Jackson, A.; Cui, Y.; Dai, H. Graphene-wrapped sulfur particles as a rechargeable lithium–sulfur battery cathode material with high capacity and cycling stability. Nano Lett., 2011, 11, 2644-2647.
-
(2011)
Nano Lett
, vol.11
, pp. 2644-2647
-
-
Wang, H.1
Yang, Y.2
Liang, Y.3
Robinson, J.T.4
Li, Y.5
Jackson, A.6
Cui, Y.7
Dai, H.8
-
15
-
-
79960266769
-
Minimizing graphene defects enhances titania nanocomposite-based photocatalytic reduction of CO2 for improved solar fuel production
-
[15] Liang, Y.T.; Vijayan, B.K.; Gray, K.A.; Hersam, M.C. Minimizing graphene defects enhances titania nanocomposite-based photocatalytic reduction of CO2 for improved solar fuel production. Nano Lett., 2011, 11, 2865-2870.
-
(2011)
Nano Lett
, vol.11
, pp. 2865-2870
-
-
Liang, Y.T.1
Vijayan, B.K.2
Gray, K.A.3
Hersam, M.C.4
-
16
-
-
84858200101
-
Solution-gated graphene field effect transistors integrated in microfluidic systems and used for flow velocity detection
-
[16] He, R.X.; Lin, P.; Liu, Z.; Zhu, H.W.; Zhao, X.Z.; Chan, H.L.; Yan, F. Solution-gated graphene field effect transistors integrated in microfluidic systems and used for flow velocity detection. Nano Lett., 2012, 12, 1404-1409.
-
(2012)
Nano Lett
, vol.12
, pp. 1404-1409
-
-
He, R.X.1
Lin, P.2
Liu, Z.3
Zhu, H.W.4
Zhao, X.Z.5
Chan, H.L.6
Yan, F.7
-
17
-
-
75649121098
-
Honeycomb carbon: A review of graphene
-
[17] Allen, M.J.; Tung, V.C.; Kaner, R.B. Honeycomb carbon: A review of graphene. Chem. Rev., 2010, 110, 132-145.
-
(2010)
Chem. Rev
, vol.110
, pp. 132-145
-
-
Allen, M.J.1
Tung, V.C.2
Kaner, R.B.3
-
18
-
-
77949880674
-
The chemistry of graphene oxide
-
[18] Dreyer, D.R.; Park, S.; Bielawski, C.W.; Ruoff, R.S. The chemistry of graphene oxide. Chem. Soc. Rev., 2010, 39, 228-240.
-
(2010)
Chem. Soc. Rev
, vol.39
, pp. 228-240
-
-
Dreyer, D.R.1
Park, S.2
Bielawski, C.W.3
Ruoff, R.S.4
-
19
-
-
4244187838
-
Tensile loading of ropes of single wall carbon nanotubes and their mechanical properties
-
[19] Yu, M.F.; Files, B.S.; Arepalli, S.; Ruoff, R.S. Tensile loading of ropes of single wall carbon nanotubes and their mechanical properties. Phys. Rev. Lett., 2000, 84, 5552-5555.
-
(2000)
Phys. Rev. Lett
, vol.84
, pp. 5552-5555
-
-
Yu, M.F.1
Files, B.S.2
Arepalli, S.3
Ruoff, R.S.4
-
20
-
-
34249742469
-
Synthesis of graphene-based nanosheets via chemical reduction of exfoliated graphite oxide
-
[20] Stankovich, S.; Dikin, D.A.; Piner, R.D.; Kohlhaas, K.A.; Kleinhammes, A.; Jia Y.; Wu, Y.; Nguyen, S.T.; Ruoff, S. Synthesis of graphene-based nanosheets via chemical reduction of exfoliated graphite oxide. Carbon, 2007, 45, 1558-1565.
-
(2007)
Carbon
, vol.45
, pp. 1558-1565
-
-
Stankovich, S.1
Dikin, D.A.2
Piner, R.D.3
Kohlhaas, K.A.4
Kleinhammes, A.5
Jia, Y.6
Wu, Y.7
Nguyen, S.T.8
Ruoff, S.9
-
22
-
-
40449124426
-
Catalyst-free synthesis, structural, and mechanical characterization of twinned Mg2B2O5 nanowires
-
[22] Tao, X.; Li, X. Catalyst-free synthesis, structural, and mechanical characterization of twinned Mg2B2O5 nanowires. Nano Lett., 2008, 8, 505.
-
(2008)
Nano Lett
, vol.8
, pp. 505
-
-
Tao, X.1
Li, X.2
-
24
-
-
66749119012
-
Large-area synthesis of high-quality and uniform graphene films on copper foils
-
[24] Li, X.; Cai, W.; An, J.; Kim, S.; Nah, J.; Yang, D.; Piner, R.; Velamakanni, A.; Jung, I.; Tutuc, E.; Banerjee, S.K.; Colombo, L.; Ruoff R.S. Large-area synthesis of high-quality and uniform graphene films on copper foils. Science, 2009, 324, 1312-1314.
-
(2009)
Science
, vol.324
, pp. 1312-1314
-
-
Li, X.1
Cai, W.2
An, J.3
Kim, S.4
Nah, J.5
Yang, D.6
Piner, R.7
Velamakanni, A.8
Jung, I.9
Tutuc, E.10
Banerjee, S.K.11
Colombo, L.12
Ruoff, R.S.13
-
25
-
-
70349668809
-
Graphene: The new two-dimensional nanomaterial
-
[25] Rao, C.N.R.; Sood, A.K.; Subrahmanyam, K.S.; Govindaraj, A. Graphene: The new two-dimensional nanomaterial. Angew. Chem. Int. Ed., 2009, 48, 7752-7777.
-
(2009)
Angew. Chem. Int. Ed
, vol.48
, pp. 7752-7777
-
-
Rao, C.1
Sood, A.K.2
Subrahmanyam, K.S.3
Govindaraj, A.4
-
26
-
-
67049114637
-
Chemical methods for the production of graphenes
-
[26] Park, S.; Ruoff, R.S. Chemical methods for the production of graphenes. Nat. Nanotechnol., 2009, 4, 217-224.
-
(2009)
Nat. Nanotechnol
, vol.4
, pp. 217-224
-
-
Park, S.1
Ruoff, R.S.2
-
27
-
-
23044442056
-
Two-dimensional atomic crystals
-
[27] Novoselov, K.S.; Jiang, D.; Schedin, F.; Booth, T.J.; Khotkevich, V.V.; Morozov, S.V.; Geim, A.K. Two-dimensional atomic crystals. Proc. Natl. Acad. Sci. USA, 2005, 102, 10451-10453.
-
(2005)
Proc. Natl. Acad. Sci. USA
, vol.102
, pp. 10451-10453
-
-
Novoselov, K.S.1
Jiang, D.2
Schedin, F.3
Booth, T.J.4
Khotkevich, V.V.5
Morozov, S.V.6
Geim, A.K.7
-
28
-
-
59649099717
-
Large-scale pattern growth of graphene films for stretchable transparent electrodes
-
[28] Kim, K.S.; Zhao, Y.; Jang, H.; Lee, S.Y.; Kim, J.M.; Kim, K.S.; Ahn, J.H.; Kim, P.; Choi, J.Y.; Hong, B.H. Large-scale pattern growth of graphene films for stretchable transparent electrodes. Nature, 2009, 457, 706-710.
-
(2009)
Nature
, vol.457
, pp. 706-710
-
-
Kim, K.S.1
Zhao, Y.2
Jang, H.3
Lee, S.Y.4
Kim, J.M.5
Kim, K.S.6
Ahn, J.H.7
Kim, P.8
Choi, J.Y.9
Hong, B.H.10
-
29
-
-
51749096677
-
A rubber like stretchable active matrix using elastic conductors
-
[29] Sekitani, T.; Noguchi, Y.; Hata, K.; Fukushima, T.; Aida, T.; Someya, T. A rubber like stretchable active matrix using elastic conductors. Science, 2008, 321, 1468-1472.
-
(2008)
Science
, vol.321
, pp. 1468-1472
-
-
Sekitani, T.1
Noguchi, Y.2
Hata, K.3
Fukushima, T.4
Aida, T.5
Someya, T.6
-
30
-
-
77949429102
-
Graphene, a promising transparent conductor
-
[30] Wassei, J.K.; Kaner, R.B. Graphene, a promising transparent conductor. Mater. Today, 2010, 13, 52-59.
-
(2010)
Mater. Today
, vol.13
, pp. 52-59
-
-
Wassei, J.K.1
Kaner, R.B.2
-
31
-
-
76249106631
-
Avouris, Ph. 100-GHz transistors from wafer-scale epitaxial graphene
-
[31] Lin Y M, Dimitrakopoulos, C, Jenkins, K. A Farmer, D. B, Chiu, H Y, Grilla, A, Avouris, Ph. 100-GHz transistors from wafer-scale epitaxial graphene. Science, 2010, 327, 662-665.
-
(2010)
Science
, vol.327
, pp. 662-665
-
-
Lin, Y.M.1
Dimitrakopoulos, C.2
, Jenkins Farmer, K.A.D.B.3
Chiu, H.Y.4
Grilla, A.5
-
32
-
-
34548388792
-
Detection of individual gas molecules adsorbed on graphene
-
[32] Schedin, F.; Geim, A.K.; Morozov, S.V.; Hill, E.W.; Blake, P.; Katsnelson, M.I.; Novoselov, K.S. Detection of individual gas molecules adsorbed on graphene. Nat. Mater., 2007, 6, 652-655.
-
(2007)
Nat. Mater
, vol.6
, pp. 652-655
-
-
Schedin, F.1
Geim, A.K.2
Morozov, S.V.3
Hill, E.W.4
Blake, P.5
Katsnelson, M.I.6
Novoselov, K.S.7
-
33
-
-
42049094251
-
Gate-variable optical transitions in graphene
-
[33] Wang, F.; Zhang, Y.; Tian, C.; Girit, C.; Zettel, A.; Crommie, M.; Shen, Y.R. Gate-variable optical transitions in graphene. Science, 2008, 320, 206-209.
-
(2008)
Science
, vol.320
, pp. 206-209
-
-
Wang, F.1
Zhang, Y.2
Tian, C.3
Girit, C.4
Zettel, A.5
Crommie, M.6
Shen, Y.R.7
-
34
-
-
0035891289
-
Hydrogen-storage materials for mobile applications
-
[34] Schlapbach, L.; Zuttel, A. Hydrogen-storage materials for mobile applications. Nature, 2001, 414, 353-358.
-
(2001)
Nature
, vol.414
, pp. 353-358
-
-
Schlapbach, L.1
Zuttel, A.2
-
35
-
-
77249139286
-
Toward ubiquitous environmental gas sensors-capitalizing on the promise of graphene
-
[35] Ratinac, K.R.; Yang, W.; Ringer S.P.; Braet, F. Toward ubiquitous environmental gas sensors-capitalizing on the promise of graphene. Environ. Sci. Technol., 2010, 44, 1167-1176.
-
(2010)
Environ. Sci. Technol
, vol.44
, pp. 1167-1176
-
-
Ratinac, K.R.1
Yang, W.2
Ringer, S.P.3
Braet, F.4
-
36
-
-
84864185238
-
Graphene based electronic sensors
-
[36] He, Q.; Wu, S.; Yin, Z.; Zhang, H. Graphene based electronic sensors. Chem. Sci., 2012, 3, 1764-1772.
-
(2012)
Chem. Sci
, vol.3
, pp. 1764-1772
-
-
He, Q.1
Wu, S.2
Yin, Z.3
Zhang, H.4
-
37
-
-
77958028126
-
Biomolecule-based nanomaterials and nanostructures
-
[37] Willner, I.; Willner, B. Biomolecule-based nanomaterials and nanostructures. Nano Lett., 2010, 10, 3805-3815.
-
(2010)
Nano Lett
, vol.10
, pp. 3805-3815
-
-
Willner, I.1
Willner, B.2
-
38
-
-
4344560262
-
Chemical sensing and catalysis by onedimensional metal-oxide nanostructures
-
[38] Kolmakov, A.; Moskovits, M. Chemical sensing and catalysis by onedimensional metal-oxide nanostructures. Annu. Rev. Mater. Res., 2004, 34, 151-180.
-
(2004)
Annu. Rev. Mater. Res
, vol.34
, pp. 151-180
-
-
Kolmakov, A.1
Moskovits, M.2
-
39
-
-
0542397763
-
The molecular wire approach to sensory signal amplification
-
[39] Swager, T.M. The molecular wire approach to sensory signal amplification. Acc. Chem. Res., 1998, 31, 201-207.
-
(1998)
Acc. Chem. Res
, vol.31
, pp. 201-207
-
-
Swager, T.M.1
-
40
-
-
0034230189
-
Cross reactive chemical sensor arrays
-
[40] Albert, K.J.; Lewis, N.S.; Schauer, C.L.; Sotzing, G.A.; Stitzel, S.E.; Vaid, T.P.; Walt, D.R. Cross reactive chemical sensor arrays. Chem. Rev., 2000, 100, 2595-2626.
-
(2000)
Chem. Rev
, vol.100
, pp. 2595-2626
-
-
Albert, K.J.1
Lewis, N.S.2
Schauer, C.L.3
Sotzing, G.A.4
Stitzel, S.E.5
Vaid, T.P.6
Walt, D.R.7
-
41
-
-
0000053544
-
Conjugated polymer-based chemical sensors
-
[41] McQuade, D.T.; Pullen, A.E.; Swager, T.M. Conjugated polymer-based chemical sensors. Chem. Rev., 2000, 100, 2537-2574.
-
(2000)
Chem. Rev
, vol.100
, pp. 2537-2574
-
-
McQuade, D.T.1
Pullen, A.E.2
Swager, T.M.3
-
42
-
-
84863229334
-
Biological and chemical sensors based on graphene materials
-
[42] Liu, Y.; Dong, X.; Chen, P. Biological and chemical sensors based on graphene materials. Chem. Soc. Rev., 2012, 41, 2283-2307.
-
(2012)
Chem. Soc. Rev
, vol.41
, pp. 2283-2307
-
-
Liu, Y.1
Dong, X.2
Chen, P.3
-
43
-
-
84863607651
-
Graphene-based chemical sensors
-
[43] Yavari, F.; Koratkar, N. Graphene-based chemical sensors. J. Phys. Chem. Lett., 2012, 3, 1746-1753.
-
(2012)
J. Phys. Chem. Lett
, vol.3
, pp. 1746-1753
-
-
Yavari, F.1
Koratkar, N.2
-
44
-
-
84865723555
-
Graphenes in chemical sensors and biosensors
-
[44] Kochmann, S.; Hirsch, T.; Wolfbeis, O.S. Graphenes in chemical sensors and biosensors. Trac-Trends Anal. Chem., 2012, 39, 87-113.
-
(2012)
Trac-Trends Anal. Chem
, vol.39
, pp. 87-113
-
-
Kochmann, S.1
Hirsch, T.2
Wolfbeis, O.S.3
-
45
-
-
80052291340
-
Chemical preparation of graphene-based nanomaterials and their applications in chemical and biological sensors
-
[45] Jiang, H. Chemical preparation of graphene-based nanomaterials and their applications in chemical and biological sensors. Small, 2011, 7, 2413-2427.
-
(2011)
Small
, vol.7
, pp. 2413-2427
-
-
Jiang, H.1
-
46
-
-
80155202852
-
Graphene sensors
-
[46] Hill, E.; Vijayaragahvan, A.; Novoselov, K. Graphene sensors. IEEE Sensor J., 2011, 11, 3161-3170.
-
(2011)
IEEE Sensor J
, vol.11
, pp. 3161-3170
-
-
Hill, E.1
Vijayaragahvan, A.2
Novoselov, K.3
-
47
-
-
77953295630
-
Graphene based electrochemical sensors and biosensors: A review
-
[47] Shao, Y.; Wang, J.; Wu, H.; Liu, J.; Aksay, I.A.; Lin, Y. Graphene based electrochemical sensors and biosensors: A review. Electroanalysis, 2010, 22, 1027-1036.
-
(2010)
Electroanalysis
, vol.22
, pp. 1027-1036
-
-
Shao, Y.1
Wang, J.2
Wu, H.3
Liu, J.4
Aksay, I.A.5
Lin, Y.6
-
48
-
-
79959964503
-
Electrochemical sensors based on graphene materials. Microchim
-
[48] Gan, T.; Hu, S. Electrochemical sensors based on graphene materials. Microchim. Acta, 2011, 175, 1-19.
-
(2011)
Acta
, vol.175
, pp. 1-19
-
-
Gan, T.1
Hu, S.2
-
49
-
-
84867078907
-
Recent developments on graphene and graphene oxide based solid state gas sensors. Sensors Actuat
-
[49] Basu, S.; Bhattacharyya, P. Recent developments on graphene and graphene oxide based solid state gas sensors. Sensors Actuat. B Chem., 2012, 173, 1-21.
-
(2012)
B Chem
, vol.173
, pp. 1-21
-
-
Basu, S.1
Bhattacharyya, P.2
-
50
-
-
84860211683
-
Graphene quantum dots: Emergent nanolights for bioimaging, sensors, catalysis and photovoltaic devices
-
[50] Shen, J.; Zhu, Y.; Yang, X.; Li, C. Graphene quantum dots: Emergent nanolights for bioimaging, sensors, catalysis and photovoltaic devices. Chem. Commun., 2012, 48, 3686-3699.
-
(2012)
Chem. Commun
, vol.48
, pp. 3686-3699
-
-
Shen, J.1
Zhu, Y.2
Yang, X.3
Li, C.4
-
51
-
-
65249119861
-
Intrinsic response of graphene vapor sensors
-
[51] Dan, Y.; Lu, Y.; Kybert, N.J.; Luo, Z.; Johnson, A.T.C. Intrinsic response of graphene vapor sensors. Nano Lett., 2009, 9, 1472-1475.
-
(2009)
Nano Lett
, vol.9
, pp. 1472-1475
-
-
Dan, Y.1
Lu, Y.2
Kybert, N.J.3
Luo, Z.4
Johnson, A.5
-
52
-
-
52649111150
-
Adsorption of gas molecules on graphene nanoribbons and its implication for nanoscale molecule sensor
-
[52] Huang, B.; Li, Z.; Liu, Z.; Zhou, G.; Hao, S.; Wu, J.; Gu, B.L.; Duan, W. Adsorption of gas molecules on graphene nanoribbons and its implication for nanoscale molecule sensor. J. Phys. Chem. C, 2008, 112, 13442-13446.
-
(2008)
J. Phys. Chem. C
, vol.112
, pp. 13442-13446
-
-
Huang, B.1
Li, Z.2
Liu, Z.3
Zhou, G.4
Hao, S.5
Wu, J.6
Gu, B.L.7
Duan, W.8
-
53
-
-
77951256574
-
Graphene-based nitrogen dioxide gas sensors
-
[53] Ko, G.; Kim, H.Y.; Ahn, J.; Park, Y.M.; Lee, K.Y.; Kim, J. Graphene-based nitrogen dioxide gas sensors. Curr. Appl. Phys., 2010, 10, 1002-1004.
-
(2010)
Curr. Appl. Phys
, vol.10
, pp. 1002-1004
-
-
Ko, G.1
Kim, H.Y.2
Ahn, J.3
Park, Y.M.4
Lee, K.Y.5
Kim, J.6
-
54
-
-
79957846816
-
Epitaxially grown graphene based gas sensors for ultra-sensitive NO2 detection
-
[54] Pearce, R.; Iakimov, T.; Andersson, M.; Hultman, L.; Spetz, A.L.; Yakimova, R. Epitaxially grown graphene based gas sensors for ultra-sensitive NO2 detection. Sensors Actuators B Chem., 2011, 155, 451-455.
-
(2011)
Sensors Actuators B Chem
, vol.155
, pp. 451-455
-
-
Pearce, R.1
Iakimov, T.2
Andersson, M.3
Hultman, L.4
Spetz, A.L.5
Yakimova, R.6
-
55
-
-
79959662449
-
Carbon dioxide gas sensor using a graphene sheet
-
[55] Yoon, H.J.; Jun, D.H.; Yang, J.H.; Zhou, Z.; Yang, S.S.; Cheng, M.M.C. Carbon dioxide gas sensor using a graphene sheet. Sensors Actuators B Chem., 2011, 157, 310-313.
-
(2011)
Sensors Actuators B Chem
, vol.157
, pp. 310-313
-
-
Yoon, H.J.1
Jun, D.H.2
Yang, J.H.3
Zhou, Z.4
Yang, S.S.5
Cheng, M.6
-
56
-
-
57749117026
-
Graphene-like nano-sheets for surface acoustic wave gas sensor applications
-
[56] Arsat, R.; Breedon, M.; Shafiel, M.; Spizziri, P.G.; Gilje, S.; Kaner, R.B.; Kalantar-Zadeh, K.; Wlodarski, W. Graphene-like nano-sheets for surface acoustic wave gas sensor applications. Chem. Phys. Lett., 2009, 467, 344-347.
-
(2009)
Chem. Phys. Lett
, vol.467
, pp. 344-347
-
-
Arsat, R.1
Breedon, M.2
Shafiel, M.3
Spizziri, P.G.4
Gilje, S.5
Kaner, R.B.6
Kalantar-Zadeh, K.7
Wlodarski, W.8
-
57
-
-
79959613164
-
Graphene-based conducting inks for direct inkjet printing of flexible conductive patterns and their applications in electric circuits and chemical sensors
-
[57] Huang, L.; Huang, Y.; Liang, J.; Wan, X.; Chen, Y. Graphene-based conducting inks for direct inkjet printing of flexible conductive patterns and their applications in electric circuits and chemical sensors. Nano Research, 2011, 4, 675-684.
-
(2011)
Nano Research
, vol.4
, pp. 675-684
-
-
Huang, L.1
Huang, Y.2
Liang, J.3
Wan, X.4
Chen, Y.5
-
58
-
-
78649987211
-
A voltammetric sensor based on graphene-modified electrode for simultaneous determination of catechol and hydroquinone
-
[58] Du, H.; Ye, J.; Zhang, J.; Huang, X.; Yu, C. A voltammetric sensor based on graphene-modified electrode for simultaneous determination of catechol and hydroquinone. J. Electroanal. Chem., 2011, 650, 209-213.
-
(2011)
J. Electroanal. Chem
, vol.650
, pp. 209-213
-
-
Du, H.1
Ye, J.2
Zhang, J.3
Huang, X.4
Yu, C.5
-
59
-
-
84856230467
-
A high performance electrochemical sensor for acetaminophen based on single-walled carbon nanotube-graphene nanosheet hybrid films
-
[59] Chen, X.; Zhu, J.; Xi, Q.; Yang, W. A high performance electrochemical sensor for acetaminophen based on single-walled carbon nanotube-graphene nanosheet hybrid films. Sensors Actuators B Chem., 2012, 161, 648-654.
-
(2012)
Sensors Actuators B Chem
, vol.161
, pp. 648-654
-
-
Chen, X.1
Zhu, J.2
Xi, Q.3
Yang, W.4
-
60
-
-
77949283983
-
A graphene-based electrochemical sensor for sensitive detection of paracetamol
-
[60] Kang, X.; Wang, J.; Wu, H.; Liu, J.; Aksay, I.A.; Lin, Y. A graphene-based electrochemical sensor for sensitive detection of paracetamol. Talanta, 2010, 81, 754-759.
-
(2010)
Talanta
, vol.81
, pp. 754-759
-
-
Kang, X.1
Wang, J.2
Wu, H.3
Liu, J.4
Aksay, I.A.5
Lin, Y.6
-
61
-
-
79251640968
-
Graphene-based electrochemical sensor for detection of 2,4,6-trinitrotoluene (TNT) in seawater: The comparison of single-, few-, and multilayer graphene nanoribbons and graphite microparticles. Anal. Bioanal
-
[61] Goh, M.S.; Pumera, M. Graphene-based electrochemical sensor for detection of 2,4,6-trinitrotoluene (TNT) in seawater: The comparison of single-, few-, and multilayer graphene nanoribbons and graphite microparticles. Anal. Bioanal. Chem., 2011, 399, 127-131.
-
(2011)
Chem
, vol.399
, pp. 127-131
-
-
Goh, M.S.1
Pumera, M.2
-
62
-
-
83055186402
-
Sensor based on N-doped graphene sheets
-
[62] Fan, H.; Li, Y.; Wu, D.; Ma, H.; Mao, K.; Fan, D.; Du, B.; Li, H.; Wei, Q. Electrochemical bisphenol A sensor based on N-doped graphene sheets. Analytica Chimica Acta, 2012, 711, 24-28.
-
(2012)
Analytica Chimica Acta
, vol.711
, pp. 24-28
-
-
Fan, H.1
Li, Y.2
Wu, D.3
Ma, H.4
Mao, K.5
Fan, D.6
Du, B.7
Li, H.8
Wei, Q.9
Electrochemical Bisphenol, A.10
-
63
-
-
78650263180
-
Graphene nanosheets modified glassy carbon electrode as a highly sensitive and selective voltammetric sensor for rutin
-
[63] Du, H.; Ye, J.; Zhang, J.; Huang, X.; Yu, C. Graphene nanosheets modified glassy carbon electrode as a highly sensitive and selective voltammetric sensor for rutin. Electroanalysis, 2010, 22, 2399-2406.
-
(2010)
Electroanalysis
, vol.22
, pp. 2399-2406
-
-
Du, H.1
Ye, J.2
Zhang, J.3
Huang, X.4
Yu, C.5
-
64
-
-
84889014307
-
Performance of graphene, carbon nanotube, and gold nanoparticle chemiresistor sensors for the detection of petroleum hydrocarbons in water
-
[64] Cooper, J.; Myers, M.; Chow, E.; Hubble, L.J.; Cairney, J.M.; Pejcic, B.; Mueller, K.H.; Wieczorek, L.; Raguse, B. Performance of graphene, carbon nanotube, and gold nanoparticle chemiresistor sensors for the detection of petroleum hydrocarbons in water. J. Nanoparticle Res., 2013, 16, 2173.
-
J. Nanoparticle Res
, vol.16
, pp. 2173
-
-
Cooper, J.1
Myers, M.2
Chow, E.3
Hubble, L.J.4
Cairney, J.M.5
Pejcic, B.6
Mueller, K.H.7
Wieczorek, L.8
Raguse, B.9
-
65
-
-
77952416022
-
Suspended graphene sensors with improved signal and reduced noise
-
[65] Chen, Z.; Li, Q.; Li, Z.; Zhou, Q.; Fang, Y. Suspended graphene sensors with improved signal and reduced noise. Nano Lett., 2010, 10, 1864-1868.
-
(2010)
Nano Lett
, vol.10
, pp. 1864-1868
-
-
Chen, Z.1
Li, Q.2
Li, Z.3
Zhou, Q.4
Fang, Y.5
-
66
-
-
55549145154
-
Solution-gated epitaxial graphene as pH sensor
-
[66] Ang, P.K.; Chen, W.; Wee, A.T.S.; Loh, K.P. Solution-gated epitaxial graphene as pH sensor. J. Am. Chem. Soc., 2008, 130, 14392-14393.
-
(2008)
J. Am. Chem. Soc
, vol.130
, pp. 14392-14393
-
-
Ang, P.K.1
Chen, W.2
Wee, A.3
Loh, K.P.4
-
67
-
-
78650081369
-
Effect of top dielectric medium on gate capacitance of graphene field effect transistors
-
[67] Xia, J.L.; Chen, F.; Wiktor, P.; Ferry, D.K.; Tao, N.J. Effect of top dielectric medium on gate capacitance of graphene field effect transistors: Implications in mobility measurements and sensor applications. Nano Lett., 2010, 10, 5060-5064.
-
(2010)
Implications in Mobility Measurements and Sensor Applications. Nano Lett
, vol.10
, pp. 5060-5064
-
-
Xia, J.L.1
Chen, F.2
Wiktor, P.3
Ferry, D.K.4
Tao, N.J.5
-
68
-
-
63449114919
-
Practical chemical sensors from chemically derived graphene
-
[68] Fowler, J.D.; Allen, M.J.; Tung, V.C.; Yang, Y.; Kaner, R.B.; Weiler, B.H. Practical chemical sensors from chemically derived graphene. ACS Nano, 2009, 3, 301-306.
-
(2009)
ACS Nano
, vol.3
, pp. 301-306
-
-
Fowler, J.D.1
Allen, M.J.2
Tung, V.C.3
Yang, Y.4
Kaner, R.B.5
Weiler, B.H.6
-
69
-
-
61649093984
-
Graphene-based single-bacterium resolution biodevice and DNA transitor: Interfacing graphene derivatives with nanoscale and microscale biocompondgs
-
[69] Mohanty, N.; Berry, V. Graphene-based single-bacterium resolution biodevice and DNA transitor: Interfacing graphene derivatives with nanoscale and microscale biocompondgs. Nano Lett., 2008, 8, 4469-4476.
-
(2008)
Nano Lett
, vol.8
, pp. 4469-4476
-
-
Mohanty, N.1
Berry, V.2
-
70
-
-
77951200970
-
Electrical detection of DNA hybridization with single-base specificity using transistors based on CVD-grown graphene sheets
-
[70] Dong, X.; Shi, Y.; Wei, H. Electrical detection of DNA hybridization with single-base specificity using transistors based on CVD-grown graphene sheets. Adv. Mater., 2010, 22, 1649-1653.
-
(2010)
Adv. Mater
, vol.22
, pp. 1649-1653
-
-
Dong, X.1
Shi, Y.2
Wei, H.3
-
71
-
-
79952608959
-
Detection using reduced graphene oxide field effect transistors
-
[71] Stine, R.; Robinson, J.T.; Sheehan, P.E.; Tamanaha, C.R. Real-time DNA detection using reduced graphene oxide field effect transistors. Adv. Mater., 2010, 22, 5297-5300
-
(2010)
Adv. Mater
, vol.22
, pp. 5297-5300
-
-
Stine, R.1
Robinson, J.T.2
Sheehan, P.E.3
Tamanaha, C.R.4
Real-Time, D.5
-
72
-
-
77955751974
-
Specific protein detection using thermally reduced graphene oxide sheet decorated with gold nanoparticleantibody conjugateds
-
[72] Mao, S.; Lu, G.; Yu, K.; Bo, Z.; Chen, Z. Specific protein detection using thermally reduced graphene oxide sheet decorated with gold nanoparticleantibody conjugateds. Adv. Mater., 2010, 22, 3521-3526.
-
(2010)
Adv. Mater
, vol.22
, pp. 3521-3526
-
-
Mao, S.1
Lu, G.2
Yu, K.3
Bo, Z.4
Chen, Z.5
-
73
-
-
84855289166
-
Detection of a prognostic indicator in early-stage cancer using functionalized graphene-based peptide sensors
-
[73] Feng, L.; Wu, L.; Wang, J.; Rem, J.; Miyoshi, D.; Sugimoto, N.; Qu, X. Detection of a prognostic indicator in early-stage cancer using functionalized graphene-based peptide sensors. Adv. Mater., 2012, 24, 125-131.
-
(2012)
Adv. Mater
, vol.24
, pp. 125-131
-
-
Feng, L.1
Wu, L.2
Wang, J.3
Rem, J.4
Miyoshi, D.5
Sugimoto, N.6
Qu, X.7
-
74
-
-
84455169577
-
Ultra-sensitive suspended graphene nanocomposite cancer sensors with strong suppression of electrical noise
-
[74] Zhang, B.; Li Q.; Cui T. Ultra-sensitive suspended graphene nanocomposite cancer sensors with strong suppression of electrical noise. Biosens. Bioelectron., 2012, 31, 105-109.
-
(2012)
Biosens. Bioelectron
, vol.31
, pp. 105-109
-
-
Zhang, B.1
Li, Q.2
Cui, T.3
-
75
-
-
79951932218
-
An ultrasensitive and low-cost graphene sensor based on layer-by-layer nano self-assembly
-
[75] Zhang, B.; Cui, T. An ultrasensitive and low-cost graphene sensor based on layer-by-layer nano self-assembly. Appl. Phys. Lett., 2011, 98, 073116.
-
(2011)
Appl. Phys. Lett
, vol.98
, pp. 073116
-
-
Zhang, B.1
Cui, T.2
-
76
-
-
84865441051
-
A graphene-based sensor array for high-precision and adaptive target identification with ensemble aptamers
-
[76] Pei, H.; Li, J.; Lv, M.; Wang, J.; Gao, J.; Lu, J.; Li, Y.; Huang, Q.; Hu, J.; Fan, C. A graphene-based sensor array for high-precision and adaptive target identification with ensemble aptamers. J. Am. Chem. Soc., 2012, 134, 13843-13849.
-
(2012)
J. Am. Chem. Soc
, vol.134
, pp. 13843-13849
-
-
Pei, H.1
Li, J.2
Lv, M.3
Wang, J.4
Gao, J.5
Lu, J.6
Li, Y.7
Huang, Q.8
Hu, J.9
Fan, C.10
-
77
-
-
84871666083
-
Graphene surface-anchored fluorescence sensor for sensitive detection of microrna coupled with enzyme-free signal amplification of hybridization chain reaction
-
[77] Yang, L.; Liu, C.; Ren, W.; Li, Z. Graphene surface-anchored fluorescence sensor for sensitive detection of microrna coupled with enzyme-free signal amplification of hybridization chain reaction. ACS Appl. Mater. Interfaces, 2012, 4, 6450-6453.
-
(2012)
ACS Appl. Mater. Interfaces
, vol.4
, pp. 6450-6453
-
-
Yang, L.1
Liu, C.2
Ren, W.3
Li, Z.4
-
78
-
-
84861735487
-
Flexible glucose sensor using CVD-grown graphene-based field effect ransistor
-
[78] Kwak, Y.H.; Choi, D.S.; Kim, Y.N.; Kim, H.; Yoon, D.H.; Ahn, S.S.; Yang, W.S.; Seo S. Flexible glucose sensor using CVD-grown graphene-based field effect ransistor. Biosens. Bioelectron., 2012, 37, 82-87.
-
(2012)
Biosens. Bioelectron
, vol.37
, pp. 82-87
-
-
Kwak, Y.H.1
Choi, D.S.2
Kim, Y.N.3
Kim, H.4
Yoon, D.H.5
Ahn, S.S.6
Yang, W.S.7
Seo, S.8
-
79
-
-
84862798358
-
Electrochemical sensor based on nitrogen doped graphene: Simultaneous determination of ascorbic acid, dopamine and uric acid
-
[79] Sheng, Z.H.; Zheng, X.Q.; Xu, J.Y.; Bao, W.J.; Wang, F.B.; Xia, X.H. Electrochemical sensor based on nitrogen doped graphene: Simultaneous determination of ascorbic acid, dopamine and uric acid. Biosens. Bioelectron., 2012, 34, 125-131.
-
(2012)
Biosens. Bioelectron
, vol.34
, pp. 125-131
-
-
Sheng, Z.H.1
Zheng, X.Q.2
Xu, J.Y.3
Bao, W.J.4
Wang, F.B.5
Xia, X.H.6
-
80
-
-
84856142276
-
Functionalized multilayered graphene platform for urea sensor
-
[80] Srivastava, R.K.; Srivastava, S.; Narayanan, T.N.; Mahlotra, B.D.; Vajtai, R.; Ajayan, P.M.; Srivastava, A. Functionalized multilayered graphene platform for urea sensor. ACS Nano, 2012, 6, 168-175.
-
(2012)
ACS Nano
, vol.6
, pp. 168-175
-
-
Srivastava, R.K.1
Srivastava, S.2
Narayanan, T.N.3
Mahlotra, B.D.4
Vajtai, R.5
Ajayan, P.M.6
Srivastava, A.7
-
81
-
-
78149450014
-
Electrochemical ascorbic acid sensor based on DMFexfoliated graphene
-
[81] Keeley, G.P.; O’Neill, A.; McEvoy, N.; Peltekis, N.; Coleman, J.N.; Duesberq, G.S. Electrochemical ascorbic acid sensor based on DMFexfoliated graphene. J. Mat. Chem., 2010, 20, 7864-7869.
-
(2010)
J. Mat. Chem
, vol.20
, pp. 7864-7869
-
-
Keeley, G.P.1
O’Neill, A.2
McEvoy, N.3
Peltekis, N.4
Coleman, J.N.5
Duesberq, G.S.6
-
82
-
-
85200524165
-
Coli sensor on flexible acetate sheet
-
[82] Basu, P.K.; Indukuri, D.; Keshavan, S.N.; Vikas, V.; Siva, R.K.; Raghavan, S.; Bhat, N. Graphene based E. coli sensor on flexible acetate sheet. Sensors Actuators B Chem., 2011, 160, 623-631.
-
(2011)
Sensors Actuators B Chem
, vol.160
, pp. 623-631
-
-
Basu, P.K.1
Indukuri, D.2
Keshavan, S.N.3
Vikas, V.4
Siva, R.K.5
Raghavan, S.6
Bhat, N.7
Graphene Based, E.8
-
83
-
-
85200525455
-
Sensitivity enhancement of a surface plasmon resonance based biomolecules sensor using graphene and silicon layers
-
[83] Verma, R.; Gupta, B.D.; Jha, R. Sensitivity enhancement of a surface plasmon resonance based biomolecules sensor using graphene and silicon layers. Sensors Actuators B Chem., 2014, 190, 342-347.
-
(2014)
Sensors Actuators B Chem
, vol.190
, pp. 342-347
-
-
Verma, R.1
Gupta, B.D.2
Jha, R.3
-
84
-
-
78649448490
-
Novel electrochemical sensor based on functionalized graphene for simultaneous determination of adenine and guanine in DNA. Colloids Surf
-
[84] Huang, K.J.; Niu, D.J.; Sun, J.Y.; Han, C.H.; Wu, Z.W.; Li, Y.L.; Xiong, X.Q. Novel electrochemical sensor based on functionalized graphene for simultaneous determination of adenine and guanine in DNA. Colloids Surf. BBiointerfaces, 2011, 82, 543-549.
-
(2011)
Bbiointerfaces
, vol.82
, pp. 543-549
-
-
Huang, K.J.1
Niu, D.J.2
Sun, J.Y.3
Han, C.H.4
Wu, Z.W.5
Li, Y.L.6
Xiong, X.Q.7
-
85
-
-
77956214550
-
DNA-decorated graphene chemical sensors
-
[85] Lu, Y.; Goldsmith, B.R.; Kybert, N.J.; Johnson, A.T.C. DNA-decorated graphene chemical sensors. Appl. Phys. Lett., 2010, 97, 083107.
-
(2010)
Appl. Phys. Lett
, vol.97
, pp. 083107
-
-
Lu, Y.1
Goldsmith, B.R.2
Kybert, N.J.3
Johnson, A.4
-
86
-
-
84894128848
-
β-Cyclodextrin functionalized graphene material: A novel electrochemical sensor for simultaneous determination of 2-chlorophenol and 3-chlorophenol
-
[86] Wei, M.; Tian, D.; Liu, S.; Zheng, X.; Duan, S.; Zhou, C. β-Cyclodextrin functionalized graphene material: A novel electrochemical sensor for simultaneous determination of 2-chlorophenol and 3-chlorophenol. Sensors Actuators B Chem., 2014, 195, 452-458.
-
(2014)
Sensors Actuators B Chem.,
, vol.195
, pp. 452-458
-
-
Wei, M.1
Tian, D.2
Liu, S.3
Zheng, X.4
Duan, S.5
Zhou, C.6
-
87
-
-
56149105109
-
Reduced graphene oxide molecular sensors
-
[87] Robinson, J.T.; Perkins, F.K.; Snow, E.S.; Wei, Z.; Sheehan, P.E. Reduced graphene oxide molecular sensors. Nano Lett., 2008, 8, 3137-3140.
-
(2008)
Nano Lett
, vol.8
, pp. 3137-3140
-
-
Robinson, J.T.1
Perkins, F.K.2
Snow, E.S.3
Wei, Z.4
Sheehan, P.E.5
-
88
-
-
79960178629
-
A new reducing agent to prepare single-layer, high-quality reduced graphene oxide for device applications
-
[88] Mao, S.; Yu, K.; Cui, S.; Bo, Z.; Lu, G.; Chen, H. A new reducing agent to prepare single-layer, high-quality reduced graphene oxide for device applications. Nanoscale, 2011, 3, 2849-2853.
-
(2011)
Nanoscale
, vol.3
, pp. 2849-2853
-
-
Mao, S.1
Yu, K.2
Cui, S.3
Bo, Z.4
Lu, G.5
Chen, H.6
-
89
-
-
79952976809
-
Electrical detection of metal ions using field-effect transistors based on micropatterned reduced graphene oxide films
-
[89] Sudibya, H.G.; He, Q.; Zhang, H.; Chen, P. Electrical detection of metal ions using field-effect transistors based on micropatterned reduced graphene oxide films. ACS Nano, 2011, 5, 1990-1994.
-
(2011)
ACS Nano
, vol.5
, pp. 1990-1994
-
-
Sudibya, H.G.1
He, Q.2
Zhang, H.3
Chen, P.4
-
90
-
-
79951889470
-
Toward practical gas sensing with highly reduced graphene oxide: A new signal processing method to circumvent run-to-run and device-to-device variations
-
[90] Lu, G.; Park, S.; Yu, K.; Ruoff, R.S.; Ocola, L.E.; Rosenmann, D.; Chen, J. Toward practical gas sensing with highly reduced graphene oxide: A new signal processing method to circumvent run-to-run and device-to-device variations. ACS Nano, 2011, 5, 1154-1164.
-
(2011)
ACS Nano
, vol.5
, pp. 1154-1164
-
-
Lu, G.1
Park, S.2
Yu, K.3
Ruoff, R.S.4
Ocola, L.E.5
Rosenmann, D.6
Chen, J.7
-
91
-
-
77949344390
-
All-organic vapor sensor using inkjetprinted reduced graphene oxide
-
[91] Dua, V.; Surwade, S.P.; Ammu, S.; Agnihotra, S.; Jain, S.; Roberts, K.; Park, S.J.; Ruoff, R.S.; Manohar, S.K. All-organic vapor sensor using inkjetprinted reduced graphene oxide. Angew. Chem. Int. Ed., 2010, 49, 2154-2157.
-
(2010)
Angew. Chem. Int. Ed
, vol.49
, pp. 2154-2157
-
-
Dua, V.1
Surwade, S.P.2
Ammu, S.3
Agnihotra, S.4
Jain, S.5
Roberts, K.6
Park, S.J.7
Ruoff, R.S.8
Manohar, S.K.9
-
92
-
-
80053340541
-
Reduced graphene oxide electrically contacted graphene sensor for highly sensitive nitric oxide detection
-
[92] Li, W.; Geng, X.; Guo, Y.; Rong, J.; Gong, Y.; Wu, L.; Zhang, X.; Li, P.; Xu, J.; Cheng, G.; Sun, M.; Liu, L. Reduced graphene oxide electrically contacted graphene sensor for highly sensitive nitric oxide detection. ACS Nano, 2011, 5, 6955-6961.
-
(2011)
ACS Nano
, vol.5
, pp. 6955-6961
-
-
Li, W.1
Geng, X.2
Guo, Y.3
Rong, J.4
Gong, Y.5
Wu, L.6
Zhang, X.7
Li, P.8
Xu, J.9
Cheng, G.10
Sun, M.11
Liu, L.12
-
93
-
-
84896821068
-
Functionalized graphene/ silicon chemi-diode H2 sensor with tunable sensitivity
-
[93] Uddin, M.A.; Singh, A.K.; Sudarshan, T.S.; Koley, G. Functionalized graphene/ silicon chemi-diode H2 sensor with tunable sensitivity. Nanotechnology, 2014, 25, 125501.
-
(2014)
Nanotechnology
, vol.25
, pp. 125501
-
-
Uddin, M.A.1
Singh, A.K.2
Sudarshan, T.S.3
Koley, G.4
-
94
-
-
77956255932
-
Flexible room-temperature NO2 gas sensors based on carbon nanotubes/reduced graphene hybrid films
-
[94] Jeong, H.Y.; Lee, D.S.; Choi, H.K.; Lee, D.H.; Kim, J.E.; Lee, J.Y.; Lee, W.J.; Kim, S.O.; Choi, S.Y. Flexible room-temperature NO2 gas sensors based on carbon nanotubes/reduced graphene hybrid films. Appl. Phys. Lett., 2010, 96, 213105.
-
(2010)
Appl. Phys. Lett
, vol.96
, pp. 213105
-
-
Jeong, H.Y.1
Lee, D.S.2
Choi, H.K.3
Lee, D.H.4
Kim, J.E.5
Lee, J.Y.6
Lee, W.J.7
Kim, S.O.8
Choi, S.Y.9
-
95
-
-
84858222542
-
Reduced graphene oxide conjugated Cu2O nanowire mesocrystals for high-performance NO2 gas sensor
-
[95] Deng, S.; Tjoa, V.; Fan, H.M.; Tan, H.R.; Sayle, D.C.; Olivo, M.; Mhaisalkar, S.; Wei, J.; Sow, C.H. Reduced graphene oxide conjugated Cu2O nanowire mesocrystals for high-performance NO2 gas sensor. J. Am. Chem. Soc., 2012, 134, 4905-4917.
-
(2012)
J. Am. Chem. Soc
, vol.134
, pp. 4905-4917
-
-
Deng, S.1
Tjoa, V.2
Fan, H.M.3
Tan, H.R.4
Sayle, D.C.5
Olivo, M.6
Mhaisalkar, S.7
Wei, J.8
Sow, C.H.9
-
96
-
-
80055097086
-
ZnO decorated luminescent graphene as a potential gas sensor at room temperature
-
[96] Singh, G.; Choudhary, A.; Haranath, D.; Joshi, A.G.; Singh, N.; Singh, S.; Pasricha, R. ZnO decorated luminescent graphene as a potential gas sensor at room temperature. Carbon, 2012, 50, 385-394.
-
(2012)
Carbon
, vol.50
, pp. 385-394
-
-
Singh, G.1
Choudhary, A.2
Haranath, D.3
Joshi, A.G.4
Singh, N.5
Singh, S.6
Pasricha, R.7
-
97
-
-
84873337794
-
High-performance NO2 sensors based on chemically modified graphene
-
[97] Yuan, W.; Liu A.; Huang L.; Li C.; Shi, G. High-performance NO2 sensors based on chemically modified graphene. Adv. Mater., 2013, 25, 766-771.
-
(2013)
Adv. Mater
, vol.25
, pp. 766-771
-
-
Yuan, W.1
Liu, A.2
Huang, L.3
Li, C.4
Shi, G.5
-
98
-
-
80054787752
-
Characterization of partially reduced graphene oxide as room temperature sensor for H2
-
[98] Zhang, L.S.; Wang, W.D.; Liang, X.Q.; Chu, W.S.; Song, W.G.; Wang, W.; Wu, Z.Y. Characterization of partially reduced graphene oxide as room temperature sensor for H2. Nanoscale, 2011, 3, 2458-2460.
-
(2011)
Nanoscale
, vol.3
, pp. 2458-2460
-
-
Zhang, L.S.1
Wang, W.D.2
Liang, X.Q.3
Chu, W.S.4
Song, W.G.5
Wang, W.6
Wu, Z.Y.7
-
99
-
-
79957530800
-
A highly efficient chemical sensor material for ethanol: Al2O3/Graphene nanocomposites fabricated from graphene oxide
-
[99] Jiang, Z.; Wang, J.; Meng, L.; Huang, Y.; Liu L. A highly efficient chemical sensor material for ethanol: Al2O3/Graphene nanocomposites fabricated from graphene oxide. Chem. Commun., 2011, 47, 6350-6352.
-
(2011)
Chem. Commun
, vol.47
, pp. 6350-6352
-
-
Jiang, Z.1
Wang, J.2
Meng, L.3
Huang, Y.4
Liu, L.5
-
100
-
-
84855346043
-
Graphene oxidebased electrochemical sensor for sensitive determination of 4-nitrophenol
-
[100] Li, J.; Kuang, D.; Feng, Y.; Zhang, F.; Xu, Z.; Liu, M. A graphene oxidebased electrochemical sensor for sensitive determination of 4-nitrophenol. J. Hazard. Mater., 2012, 201, 250-259.
-
(2012)
J. Hazard. Mater
, vol.201
, pp. 250-259
-
-
Li, J.1
Kuang, D.2
Feng, Y.3
Zhang, F.4
Xu, Z.5
Liu, M.A.6
-
101
-
-
80053459997
-
Highly sensitive protein sensor based on thermally-reduced graphene oxide field-effect transistor
-
[101] Mao, S.; Yu, K.; Lu, G.; Chen, J. Highly sensitive protein sensor based on thermally-reduced graphene oxide field-effect transistor. Nano Research, 2011, 4, 921-930.
-
(2011)
Nano Research
, vol.4
, pp. 921-930
-
-
Mao, S.1
Yu, K.2
Lu, G.3
Chen, J.4
-
102
-
-
78649883168
-
Microwave-assisted synthesis of highly water-soluble graphene towards electrical DNA sensor
-
[102] Choi, B.G.; Park, H.S.; Yang, M.H.; Jung, Y.M.; Lee, S.Y.; Hong, W.H.; Park, T.J. Microwave-assisted synthesis of highly water-soluble graphene towards electrical DNA sensor. Nanoscale, 2010, 2, 2692-2697.
-
(2010)
Nanoscale
, vol.2
, pp. 2692-2697
-
-
Choi, B.G.1
Park, H.S.2
Yang, M.H.3
Jung, Y.M.4
Lee, S.Y.5
Hong, W.H.6
Park, T.J.7
-
103
-
-
80052936489
-
A graphene oxidepeptide fluorescence sensor tailor-made for simple and sensitive detection of matrix metalloproteinase 2
-
[103] Feng, D.; Zhang, Y.; Feng, T.; Shi, W.; Li, X.; Ma, H. A graphene oxidepeptide fluorescence sensor tailor-made for simple and sensitive detection of matrix metalloproteinase 2. Chem. Commun., 2011, 47, 10680-10682.
-
(2011)
Chem. Commun
, vol.47
, pp. 10680-10682
-
-
Feng, D.1
Zhang, Y.2
Feng, T.3
Shi, W.4
Li, X.5
Ma, H.6
-
104
-
-
79960638579
-
Graphene oxide– peptide conjugate as an intracellular protease sensor for caspase-3 activation imaging in live cells
-
[104] Wang, H.; Zhang, Q.; Chu, X.; Chen, T.; Ge, J.; Yu, R. Graphene oxide– peptide conjugate as an intracellular protease sensor for caspase-3 activation imaging in live cells. Angew. Chem. Int. Ed., 2011, 50, 7065-7069.
-
(2011)
Angew. Chem. Int. Ed
, vol.50
, pp. 7065-7069
-
-
Wang, H.1
Zhang, Q.2
Chu, X.3
Chen, T.4
Ge, J.5
Yu, R.6
-
105
-
-
84870817989
-
Reusable sensor based on high magnetization carboxyl-modified graphene oxide with intrinsic hydrogen peroxide catalytic activity for hydrogen peroxide and glucose detection
-
[105] Yang, H.W.; Hua, M.Y.; Chen, S.L.; Tsai, R.Y. Reusable sensor based on high magnetization carboxyl-modified graphene oxide with intrinsic hydrogen peroxide catalytic activity for hydrogen peroxide and glucose detection. Biosens. Bioelectron., 2013, 41, 172-179.
-
(2013)
Biosens. Bioelectron
, vol.41
, pp. 172-179
-
-
Yang, H.W.1
Hua, M.Y.2
Chen, S.L.3
Tsai, R.Y.4
-
106
-
-
79953719066
-
A label-free DNA reduced graphene oxide-based fluorescent sensor for highly sensitive and selective detection of hemin
-
[106] Shi, Y.; Huang, W.T.; Luo, H.Q.; Li, N.B. A label-free DNA reduced graphene oxide-based fluorescent sensor for highly sensitive and selective detection of hemin. Chem. Commun., 2011, 47, 4676-4678.
-
(2011)
Chem. Commun
, vol.47
, pp. 4676-4678
-
-
Shi, Y.1
Huang, W.T.2
Luo, H.Q.3
Li, N.B.4
-
107
-
-
84861623294
-
Photoluminescent graphene oxide ink to print sensors onto microporous membranes for versatile visualization bioassays
-
[107] Mei, Q.; Zhang, Z. Photoluminescent graphene oxide ink to print sensors onto microporous membranes for versatile visualization bioassays. Angew. Chem. Int. Ed., 2012, 51, 5602-5605.
-
(2012)
Angew. Chem. Int. Ed
, vol.51
, pp. 5602-5605
-
-
Mei, Q.1
Zhang, Z.2
-
108
-
-
84894284760
-
All-fiber-optic temperature sensor based on reduced graphene oxide
-
[108] Zhang, J.; Liao, G.; Jin, S.; Cao, D.; Wei, Q.; Lu, H.; Yu, J.; Cai, X.; Tan, S.; Xiao, Y.; Tang, J.; Luo, Y.; Chen, Z. All-fiber-optic temperature sensor based on reduced graphene oxide. Laser Phys. Lett., 2014, 11, 035901.
-
(2014)
Laser Phys. Lett
, vol.11
, pp. 035901
-
-
Zhang, J.1
Liao, G.2
Jin, S.3
Cao, D.4
Wei, Q.5
Lu, H.6
Yu, J.7
Cai, X.8
Tan, S.9
Xiao, Y.10
Tang, J.11
Luo, Y.12
Chen, Z.13
-
109
-
-
84891369385
-
Ultrafast graphene oxide humidity sensors
-
[109] Borini, S.; White, R.; Wei, D.; Astley, M.; Haque, S.; Spigone, E.; Harris, N.; Kivioja, J.; Ryhanen, T. Ultrafast graphene oxide humidity sensors. ACS Nano, 2013, 7, 11166-11173.
-
(2013)
ACS Nano
, vol.7
, pp. 11166-11173
-
-
Borini, S.1
White, R.2
Wei, D.3
Astley, M.4
Haque, S.5
Spigone, E.6
Harris, N.7
Kivioja, J.8
Ryhanen, T.9
-
110
-
-
84857692367
-
Aptasensor based on nitrogen-doped graphene converted from conducting polymer
-
[110] Kwon, O.S.; Park, S.J.; Hong, J.Y.; Han, A.R.; Lee, J.S.; Lee, J.S.; Oh, J.H.; Jang, J. Flexible FET-Type VEGF aptasensor based on nitrogen-doped graphene converted from conducting polymer. ACS Nano, 2012, 6, 1486-1494.
-
(2012)
ACS Nano
, vol.6
, pp. 1486-1494
-
-
Kwon, O.S.1
Park, S.J.2
Hong, J.Y.3
Han, A.R.4
Lee, J.S.5
Lee, J.S.6
Oh, J.H.7
Jang, J.8
Flexible Fet-Type, V.9
-
111
-
-
84867443349
-
Ultrasensitive flexible graphene based field-effect transistor (Fet)-type bioelectronic nose
-
[111] Park, S.J.; Kwon, O.S.; Lee, S.H.; Song, H.S.; Park, T.H.; Jang, J. Ultrasensitive flexible graphene based field-effect transistor (fet)-type bioelectronic nose. Nano Lett., 2012, 12, 5082-5090.
-
(2012)
Nano Lett
, vol.12
, pp. 5082-5090
-
-
Park, S.J.1
Kwon, O.S.2
Lee, S.H.3
Song, H.S.4
Park, T.H.5
Jang, J.6
-
112
-
-
84891349862
-
High-performance flexible graphene aptasensor for mercury detection in mussels
-
[112] An, J.H.; Park, S.J.; Kwon, O.S.; Bae, J.; Jang, J. High-performance flexible graphene aptasensor for mercury detection in mussels. ACS Nano, 2013, 7, 10563-10571.
-
(2013)
ACS Nano
, vol.7
, pp. 10563-10571
-
-
An, J.H.1
Park, S.J.2
Kwon, O.S.3
Bae, J.4
Jang, J.5
-
113
-
-
84855583571
-
Graphene decoration with metal nanoparticles: Towards easy integration for sensing applications
-
[113] Gutes, A.; Hsia, B.; Sussman, A.; Mickelson, W.; Zettl, A.; Carraro, C.; Maboudian, R. Graphene decoration with metal nanoparticles: Towards easy integration for sensing applications. Nanoscale, 2012, 4, 438-440.
-
(2012)
Nanoscale
, vol.4
, pp. 438-440
-
-
Gutes, A.1
Hsia, B.2
Sussman, A.3
Mickelson, W.4
Zettl, A.5
Carraro, C.6
Maboudian, R.7
-
114
-
-
77953678696
-
Nanostructured Pt decorated graphene and multi walled carbon nanotube based room temperature hydrogen gas sensor
-
[114] Kaniyoor, A.; Jafri, R.I.; Arockiadoss, T.; Ramaprabhu, S. Nanostructured Pt decorated graphene and multi walled carbon nanotube based room temperature hydrogen gas sensor. Nanoscale, 2009, 1, 382-386.
-
(2009)
Nanoscale
, vol.1
, pp. 382-386
-
-
Kaniyoor, A.1
Jafri, R.I.2
Arockiadoss, T.3
Ramaprabhu, S.4
-
115
-
-
79953169106
-
Hydrogen sensor based on a graphene-palladium nanocomposite
-
[115] Lange, U.; Hirsch, T.; Mirsky, V.M.; Wolfbeis, O.S. Hydrogen sensor based on a graphene-palladium nanocomposite. Electrochimica Acta, 2011, 56, 3707-3712.
-
(2011)
Electrochimica Acta
, vol.56
, pp. 3707-3712
-
-
Lange, U.1
Hirsch, T.2
Mirsky, V.M.3
Wolfbeis, O.S.4
-
116
-
-
84861848486
-
Flexible hydrogen sensors using graphene with palladium nanoparticle decoration
-
[116] Chung, M.G.; Kim, D.H.; Seo, D.K.; Kim, T.; Im, H.W.; Lee, H.M.; Yoo, J.B.; Hong, S.H.; Kang, T.J.; Kim, Y.H. Flexible hydrogen sensors using graphene with palladium nanoparticle decoration. Sensors Actuators B Chem., 2012, 169, 387-392.
-
(2012)
Sensors Actuators B Chem
, vol.169
, pp. 387-392
-
-
Chung, M.G.1
Kim, D.H.2
Seo, D.K.3
Kim, T.4
Im, H.W.5
Lee, H.M.6
Yoo, J.B.7
Hong, S.H.8
Kang, T.J.9
Kim, Y.H.10
-
117
-
-
77957367402
-
A novel nonenzymatic hydrogen peroxide sensor based on MnO2/graphene oxide nanocomposite
-
[117] Li, L.; Du, Z.; Liu, S.; Hao, Q.; Wang, Y.; Li, Q.; Wang, T. A novel nonenzymatic hydrogen peroxide sensor based on MnO2/graphene oxide nanocomposite. Talanta, 2010, 82, 1637-1641.
-
(2010)
Talanta
, vol.82
, pp. 1637-1641
-
-
Li, L.1
Du, Z.2
Liu, S.3
Hao, Q.4
Wang, Y.5
Li, Q.6
Wang, T.7
-
118
-
-
84870819546
-
Jiang, H. Layer-by-layer assembly of graphene, Au and poly(toluidine blue O) films sensor for evaluation of oxidative stress of tumor cells elicited by hydrogen peroxide
-
[118] Chang, H.; Wang, X.; Shiu, K.K.; Zhu, Y.; Wang, J.; Li, Q.; Chen, B.; Jiang, H. Layer-by-layer assembly of graphene, Au and poly(toluidine blue O) films sensor for evaluation of oxidative stress of tumor cells elicited by hydrogen peroxide. Biosens. Bioelectron., 2013, 41, 789-794.
-
(2013)
Biosens. Bioelectron
, vol.41
, pp. 789-794
-
-
Chang, H.1
Wang, X.2
Shiu, K.K.3
Zhu, Y.4
Wang, J.5
Li, Q.6
Chen, B.7
-
119
-
-
79952538401
-
Direct electrochemistry of catalase at amine-functionalized graphene/gold nanoparticles composite film for hydrogen peroxide sensor
-
[119] Huang, K.J.; Niu, D.J.; Liu, X.; Wu, Z.W.; Fan, Y.; Chang, Y.F.; Wu, Y.Y. Direct electrochemistry of catalase at amine-functionalized graphene/gold nanoparticles composite film for hydrogen peroxide sensor. Electrochi. Acta, 2011, 56, 2947-2953.
-
(2011)
Electrochi. Acta
, vol.56
, pp. 2947-2953
-
-
Huang, K.J.1
Niu, D.J.2
Liu, X.3
Wu, Z.W.4
Fan, Y.5
Chang, Y.F.6
Wu, Y.Y.7
-
120
-
-
84862795553
-
A novel nonenzymatic hydrogen peroxide sensor based on reduced graphene oxide/ZnO composite modified electrode
-
[120] Palanisamy, S.; Chen, S.M.; Sarawathi, R. A novel nonenzymatic hydrogen peroxide sensor based on reduced graphene oxide/ZnO composite modified electrode. Sensors Actuators B Chem., 2012, 166, 372-377.
-
(2012)
Sensors Actuators B Chem
, vol.166
, pp. 372-377
-
-
Palanisamy, S.1
Chen, S.M.2
Sarawathi, R.3
-
121
-
-
81355160206
-
An amperometric hydrogen peroxide chemical sensor based on graphene-Fe3O4 multilayer films modified ITO electrode
-
[121] Liu, X.; Zhu, H.; Yang, X. An amperometric hydrogen peroxide chemical sensor based on graphene-Fe3O4 multilayer films modified ITO electrode. Talanta, 2011, 87, 243-248.
-
(2011)
Talanta
, vol.87
, pp. 243-248
-
-
Liu, X.1
Zhu, H.2
Yang, X.3
-
122
-
-
80053103744
-
The comparison of different gold nanoparticles/graphene nanosheets hybrid nanocomposites in electrochemical performance and the construction of a sensitive uric acid electrochemical sensor with novel hybrid nanocomposites
-
[122] Xue, Y.; Zhao, H.; Wu, Z.; Li, X.; He, Y.; Yuan, Z. The comparison of different gold nanoparticles/graphene nanosheets hybrid nanocomposites in electrochemical performance and the construction of a sensitive uric acid electrochemical sensor with novel hybrid nanocomposites. Biosens. Bioelectron., 2011, 29, 102-108.
-
(2011)
Biosens. Bioelectron
, vol.29
, pp. 102-108
-
-
Xue, Y.1
Zhao, H.2
Wu, Z.3
Li, X.4
He, Y.5
Yuan, Z.6
-
123
-
-
84864379359
-
Electrochemical sensor based on gold nanoparticles fabricated molecularly imprinted polymer film at chitosan-platinum nanoparticles/graphene-gold nanoparticles double nanocomposites modified electrode for detection of erythromycin
-
[123] Lian, W.; Liu, S.; Yu, J.; Xing, X.; Li, J.; Cui, M.; Huang, J. Electrochemical sensor based on gold nanoparticles fabricated molecularly imprinted polymer film at chitosan-platinum nanoparticles/graphene-gold nanoparticles double nanocomposites modified electrode for detection of erythromycin. Biosens. Bioelectron., 2012, 38, 163-169.
-
(2012)
Biosens. Bioelectron
, vol.38
, pp. 163-169
-
-
Lian, W.1
Liu, S.2
Yu, J.3
Xing, X.4
Li, J.5
Cui, M.6
Huang, J.7
-
124
-
-
79961128163
-
An enzymeless organophosphate pesticide sensor using Au nanoparticle-decorated graphene hybrid nanosheet as solid-phase extraction
-
[124] Gong, J.; Miao, X.; Zhou, T.; Zhang, L. An enzymeless organophosphate pesticide sensor using Au nanoparticle-decorated graphene hybrid nanosheet as solid-phase extraction. Talanta, 2011, 85, 1344-1349.
-
(2011)
Talanta
, vol.85
, pp. 1344-1349
-
-
Gong, J.1
Miao, X.2
Zhou, T.3
Zhang, L.4
-
125
-
-
77956254438
-
Solution-processed ZnO-chemically converted graphene gas sensor
-
[125] Cuong, T.V.; Pham, V.H.; Chung, J.S.; Shin, E.W.; Yoo, D.H.; Hahn, S.H.; Huh, J.S.; Rue, G.H.; Kim, E.J.; Hur, S.H.; Kohl, P.A. Solution-processed ZnO-chemically converted graphene gas sensor. Mater. Lett., 2010, 64, 2479-2482.
-
(2010)
Mater. Lett
, vol.64
, pp. 2479-2482
-
-
Cuong, T.V.1
Pham, V.H.2
Chung, J.S.3
Shin, E.W.4
Yoo, D.H.5
Hahn, S.H.6
Huh, J.S.7
Rue, G.H.8
Kim, E.J.9
Hur, S.H.10
Kohl, P.A.11
-
126
-
-
80054889109
-
Highly aligned SnO2 nanorods on graphene sheets for gas sensors
-
[126] Zhang, Z.; Zou, R.; Song, G.; Yu, L.; Chen, Z.; Hu, Z. Highly aligned SnO2 nanorods on graphene sheets for gas sensors. J. Mat. Chem., 2011, 21, 17360-17365.
-
(2011)
J. Mat. Chem
, vol.21
, pp. 17360-17365
-
-
Zhang, Z.1
Zou, R.2
Song, G.3
Yu, L.4
Chen, Z.5
Hu, Z.6
-
127
-
-
79956363443
-
Vertically aligned ZnO nanorods and graphene hybrid architectures for high-sensitive flexible gas sensors
-
[127] Yi, J.; Lee, J.M.; Park, W.I. Vertically aligned ZnO nanorods and graphene hybrid architectures for high-sensitive flexible gas sensors. Sensors Actuators B Chem., 2011, 155, 264-269.
-
(2011)
Sensors Actuators B Chem
, vol.155
, pp. 264-269
-
-
Yi, J.1
Lee, J.M.2
Park, W.I.3
-
128
-
-
79955584980
-
Graphene sheets decorated with SnO2 nanoparticles: In situ synthesis and highly efficient materials for cataluminescence gas sensors
-
[128] Song, H.; Zhang, L.; He, C.; Qu, Y.; Tian, Y.; Lv, Y. Graphene sheets decorated with SnO2 nanoparticles: In situ synthesis and highly efficient materials for cataluminescence gas sensors. J. Mat. Chem., 2011, 21, 5972-5977.
-
(2011)
J. Mat. Chem
, vol.21
, pp. 5972-5977
-
-
Song, H.1
Zhang, L.2
He, C.3
Qu, Y.4
Tian, Y.5
Lv, Y.6
-
129
-
-
80052149095
-
Adsorption of gas molecules on transition metal embedded graphene: A search for highperformance graphene-based catalysts and gas sensors
-
[129] Zhou, M.; Lu, Y.H.; Cai, Y.Q.; Zhang, C.; Feng, Y.P. Adsorption of gas molecules on transition metal embedded graphene: A search for highperformance graphene-based catalysts and gas sensors. Nanotechnology, 2011, 22, 385502.
-
(2011)
Nanotechnology
, vol.22
, pp. 385502
-
-
Zhou, M.1
Lu, Y.H.2
Cai, Y.Q.3
Zhang, C.4
Feng, Y.P.5
-
130
-
-
81255176366
-
Highly dispersive Ag nanoparticles on functionalized graphene for an excellent electrochemical sensor of nitroaromatic compounds
-
[130] Lu, X.; Qi, H.; Zhang, X.; Xue, Z.; Jin, J.; Zhou, X.; Liu, X. Highly dispersive Ag nanoparticles on functionalized graphene for an excellent electrochemical sensor of nitroaromatic compounds. Chem. Commun., 2011, 47, 12494-12496.
-
(2011)
Chem. Commun
, vol.47
, pp. 12494-12496
-
-
Lu, X.1
Qi, H.2
Zhang, X.3
Xue, Z.4
Jin, J.5
Zhou, X.6
Liu, X.7
-
131
-
-
84871797907
-
Rapid and sensitive in situ detection of polar antibiotics in water using a disposable Aggraphene sensor based on electrophoretic preconcentration and surfaceenhanced Raman spectroscopy
-
[131] Li, Y.T.; Qu, L.L.; Li, D.W.; Song, Q.X.; Fathi, F.; Long, Y.T. Rapid and sensitive in situ detection of polar antibiotics in water using a disposable Aggraphene sensor based on electrophoretic preconcentration and surfaceenhanced Raman spectroscopy. Biosens. Bioelectron., 2013, 43, 94-100.
-
(2013)
Biosens. Bioelectron
, vol.43
, pp. 94-100
-
-
Li, Y.T.1
Qu, L.L.2
Li, D.W.3
Song, Q.X.4
Fathi, F.5
Long, Y.T.6
-
132
-
-
84863297425
-
Ferrocene functionalized graphene: Preparation, characterization and efficient electron transfer toward sensors of H2O2
-
[132] Fan, L.; Zhang, Q.; Wang, K.; Li, F.; Niu, L. Ferrocene functionalized graphene: Preparation, characterization and efficient electron transfer toward sensors of H2O2. J. Mater. Chem., 2012, 22, 6165-6170.
-
(2012)
J. Mater. Chem
, vol.22
, pp. 6165-6170
-
-
Fan, L.1
Zhang, Q.2
Wang, K.3
Li, F.4
Niu, L.5
-
133
-
-
84865042854
-
Facile synthesis of uniform Ag nanoparticle decorated CVD-grown graphene via surface engineering
-
[133] Yoo, S.A.; Kwon, O.S.; Jang, J. A facile synthesis of uniform Ag nanoparticle decorated CVD-grown graphene via surface engineering. J. Mater. Chem., 2012, 22, 17805-17812.
-
(2012)
J. Mater. Chem
, vol.22
, pp. 17805-17812
-
-
Yoo, S.A.1
Kwon, O.S.2
Jang, J.A.3
-
134
-
-
84869428465
-
Label-free polypeptide-based enzyme detection using a graphene-nanoparticle hybrid sensor
-
[134] Myung, S.; Yin, P.T.; Kim, C.; Park, J.; Solanki, A.; Reyes, P.I.; Lu, Y.; Kim, K.S.; Lee, K.B. Label-free polypeptide-based enzyme detection using a graphene-nanoparticle hybrid sensor. Adv. Mater., 2012, 24, 6081-6087.
-
(2012)
Adv. Mater
, vol.24
, pp. 6081-6087
-
-
Myung, S.1
Yin, P.T.2
Kim, C.3
Park, J.4
Solanki, A.5
Reyes, P.I.6
Lu, Y.7
Kim, K.S.8
Lee, K.B.9
-
135
-
-
79954631973
-
Gold-silver-graphene hybrid nanosheets-based sensors for sensitive amperometric immunoassay of alphafetoprotein using nanogold-enclosed titania nanoparticles as labels
-
[135] Su, B.; Tang, D.; Li, Q.; Tang, J.; Chen, G. Gold-silver-graphene hybrid nanosheets-based sensors for sensitive amperometric immunoassay of alphafetoprotein using nanogold-enclosed titania nanoparticles as labels. Anal. Chim. Acta, 2011, 692, 116-124.
-
(2011)
Anal. Chim. Acta
, vol.692
, pp. 116-124
-
-
Su, B.1
Tang, D.2
Li, Q.3
Tang, J.4
Chen, G.5
-
136
-
-
80054970833
-
Electrochemical DNA sensor by the assembly of graphene and DNA-conjugated gold nanoparticles with silver enhancement strategy
-
[136] Lin, L.; Liu, Y.; Tang, L.; Li, J. Electrochemical DNA sensor by the assembly of graphene and DNA-conjugated gold nanoparticles with silver enhancement strategy. Analyst, 2011, 136, 4732-4737.
-
(2011)
Analyst
, vol.136
, pp. 4732-4737
-
-
Lin, L.1
Liu, Y.2
Tang, L.3
Li, J.4
-
137
-
-
84856171546
-
Stacked graphene-Al2O3 nanopore sensors for sensitive detection of DNA and DNA-protein complexes
-
[137] Venkatesan, B.; Estrada, D.; Banerjee, S.; Jin, X.; Dorgan, V.E.; Bae, M.H.; Aluru, N.R.; Pop, E.; Bashir, R. Stacked graphene-Al2O3 nanopore sensors for sensitive detection of DNA and DNA-protein complexes. ACS Nano, 2012, 6, 441-450.
-
(2012)
ACS Nano
, vol.6
, pp. 441-450
-
-
Venkatesan, B.1
Estrada, D.2
Banerjee, S.3
Jin, X.4
Dorgan, V.E.5
Bae, M.H.6
Aluru, N.R.7
Pop, E.8
Bashir, R.9
-
138
-
-
84155165112
-
Novel non-enzymatic glucose sensor based on Cu nanoparticle modified graphene sheets electrode
-
[138] Luo, J.; Jiang, S.; Zhang, H.; Jiang, J.; Liu, X. A novel non-enzymatic glucose sensor based on Cu nanoparticle modified graphene sheets electrode. Anal. Chim. Acta, 2012, 709, 47-53.
-
(2012)
Anal. Chim. Acta
, vol.709
, pp. 47-53
-
-
Luo, J.1
Jiang, S.2
Zhang, H.3
Jiang, J.4
Liu, X.A.5
-
139
-
-
84864290108
-
Nonenzymatic glucose sensor based on graphene oxide and electrospun NiO nanofibers
-
[139] Zhang, Y.; Wang, Y.; Jia, J.; Wang, J. Nonenzymatic glucose sensor based on graphene oxide and electrospun NiO nanofibers. Sensors Actuators B Chem., 2012, 171, 580-587.
-
(2012)
Sensors Actuators B Chem
, vol.171
, pp. 580-587
-
-
Zhang, Y.1
Wang, Y.2
Jia, J.3
Wang, J.4
-
140
-
-
84863905928
-
Well-dispersed palladium nanoparticles on graphene oxide as a non-enzymatic glucose sensor
-
[140] Wang, Q.; Cui, X.; Chem, J.; Zheng, X.; Liu, C.; Xue, T.; Wang, H.; Jin, Z.; Qiao, L.; Zheng, W. Well-dispersed palladium nanoparticles on graphene oxide as a non-enzymatic glucose sensor. RSC Adv., 2012, 2, 6245-6249.
-
(2012)
RSC Adv
, vol.2
, pp. 6245-6249
-
-
Wang, Q.1
Cui, X.2
Chem, J.3
Zheng, X.4
Liu, C.5
Xue, T.6
Wang, H.7
Jin, Z.8
Qiao, L.9
Zheng, W.10
-
141
-
-
84870808485
-
Growth of coral-like PtAu-MnO2 binary nanocomposites on free-standing graphene paper for flexible nonenzymatic glucose sensors. Biosens
-
[141] Xiao, F.; Li, Y.; Gao, H.; Ge, S.; Duan, H. Growth of coral-like PtAu-MnO2 binary nanocomposites on free-standing graphene paper for flexible nonenzymatic glucose sensors. Biosens. Bioelectron., 2013, 41, 417-423.
-
(2013)
Bioelectron
, vol.41
, pp. 417-423
-
-
Xiao, F.1
Li, Y.2
Gao, H.3
Ge, S.4
Duan, H.5
-
142
-
-
84872701547
-
Decorating PtCo bimetallic alloy nanoparticles on graphene as sensors for glucose detection by catalyzing luminol chemiluminescence
-
[142] Yang, P.; Jin, S.Y.; Xu, Q.Z.; Yu, S.H. Decorating PtCo bimetallic alloy nanoparticles on graphene as sensors for glucose detection by catalyzing luminol chemiluminescence. Small, 2013, 9, 199-204.
-
(2013)
Small
, vol.9
, pp. 199-204
-
-
Yang, P.1
Jin, S.Y.2
Xu, Q.Z.3
Yu, S.H.4
-
143
-
-
79953654309
-
One-pot solvothermal synthesis of a Cu2O/Graphene nanocomposite and its application in an electrochemical sensor for dopamine
-
[143] Zhang, F.; Li, Y.; Gu, Y.; Wang, Z.; Wang, C. One-pot solvothermal synthesis of a Cu2O/Graphene nanocomposite and its application in an electrochemical sensor for dopamine. Microchim. Acta, 2011, 173, 103-109.
-
(2011)
Microchim. Acta
, vol.173
, pp. 103-109
-
-
Zhang, F.1
Li, Y.2
Gu, Y.3
Wang, Z.4
Wang, C.5
-
144
-
-
84862806834
-
Electrochemical sensor for epinephrine based on a glassy carbon electrode modified with graphene/gold nanocomposites
-
[144] Cui, F.; Zhang, X. Electrochemical sensor for epinephrine based on a glassy carbon electrode modified with graphene/gold nanocomposites. J. Electroanal. Chem., 2012, 669, 35-41.
-
(2012)
J. Electroanal. Chem
, vol.669
, pp. 35-41
-
-
Cui, F.1
Zhang, X.2
-
145
-
-
84856690039
-
Facile synthesis of zirconia nanoparticles-decorated graphene hybrid nanosheets for an enzymeless methyl parathion sensor
-
[145] Gong, J.; Miao, X.; Wan, H.; Song, D. Facile synthesis of zirconia nanoparticles-decorated graphene hybrid nanosheets for an enzymeless methyl parathion sensor. Sensors Actuators B Chem., 2012, 162, 341-347.
-
(2012)
Sensors Actuators B Chem
, vol.162
, pp. 341-347
-
-
Gong, J.1
Miao, X.2
Wan, H.3
Song, D.4
-
146
-
-
80052354034
-
Electrochemical sensor for dopamine based on a novel graphene-molecular imprinted polymers composite recognition element
-
[146] Mao, Y.; Bao, Y.; Gan, S.; Niu, L. Electrochemical sensor for dopamine based on a novel graphene-molecular imprinted polymers composite recognition element. Biosens. Bioelectron., 2011, 28, 291-297.
-
(2011)
Biosens. Bioelectron
, vol.28
, pp. 291-297
-
-
Mao, Y.1
Bao, Y.2
Gan, S.3
Niu, L.4
-
147
-
-
84455205627
-
Electrochemical sensor based on molecularly imprinted film at polypyrrole-sulfonated graphene/hyaluronic acid-multiwalled carbon nanotubes modified electrode for determination of tryptamine
-
[147] Xing, X.; Liu, S.; Yu, J.; Lian, W.; Huang, J. Electrochemical sensor based on molecularly imprinted film at polypyrrole-sulfonated graphene/hyaluronic acid-multiwalled carbon nanotubes modified electrode for determination of tryptamine. Biosens. Bioelectron., 2012, 31, 277-283.
-
(2012)
Biosens. Bioelectron
, vol.31
, pp. 277-283
-
-
Xing, X.1
Liu, S.2
Yu, J.3
Lian, W.4
Huang, J.5
-
148
-
-
79952816900
-
Graphene-based electrochemical sensor for sensitive determination of caffeine
-
[148] Sun, J.Y.; Huang, K.J.; Wei, S.Y.; Wu, Z.W.; Ren, F.P. A graphene-based electrochemical sensor for sensitive determination of caffeine. Colloids Surf. B-Biointerfaces, 2011, 84, 421-426.
-
(2011)
Colloids Surf. B-Biointerfaces
, vol.84
, pp. 421-426
-
-
Sun, J.Y.1
Huang, K.J.2
Wei, S.Y.3
Wu, Z.W.4
Ren, F.5
-
149
-
-
77449107706
-
Novel hydrazine electrochemical sensor based on the high specific surface area graphene
-
[149] Wang, C.; Zhang, L.; Guo, Z.; Xu, J.; Wang, H.; Zhai, K.; Zhou, X. A novel hydrazine electrochemical sensor based on the high specific surface area graphene. Microchim. Acta, 2010, 169, 1-6.
-
(2010)
Microchim. Acta
, vol.169
, pp. 1-6
-
-
Wang, C.1
Zhang, L.2
Guo, Z.3
Xu, J.4
Wang, H.5
Zhai, K.6
Zhou, X.A.7
-
150
-
-
84887835055
-
A novel way for detection of eugenol via poly (Diallyldimethylammonium chloride) functionalized graphene-MoS2 nano-flower fabricated electrochemical sensor
-
[150] Feng, Q.L.; Duan, K.Y.; Ye, X.L.; Lu, D.B.; Du, Y.L.; Wang, C.M. A novel way for detection of eugenol via poly (diallyldimethylammonium chloride) functionalized graphene-MoS2 nano-flower fabricated electrochemical sensor. Sensors Actuators B Chem., 2014, 192, 1-6.
-
(2014)
Sensors Actuators B Chem
, vol.192
, pp. 1-6
-
-
Feng, Q.L.1
Duan, K.Y.2
Ye, X.L.3
Lu, D.B.4
Du, Y.L.5
Wang, C.M.6
-
151
-
-
84889684100
-
Electrochemical sensor for levofloxacin based on molecularly imprinted polypyrrole-graphene-gold nanoparticles modified electrode
-
[151] Wang, F.; Zhu, L.; Zhang, J. Electrochemical sensor for levofloxacin based on molecularly imprinted polypyrrole-graphene-gold nanoparticles modified electrode. Sensors Actuators B Chem., 2014, 192, 642-647.
-
(2014)
Sensors Actuators B Chem
, vol.192
, pp. 642-647
-
-
Wang, F.1
Zhu, L.2
Zhang, J.3
-
152
-
-
84890798016
-
Colorimetric sensor based on self-assembled polydiacetylene/ graphene-stacked composite film for vapor-phase volatile organic compounds
-
[152] Wang, X.; Sun, X.; Hu, P.A.; Zhang, J.; Wang, L.; Feng, W.; Lei, S.; Yang, B.; Cao, W. Colorimetric sensor based on self-assembled polydiacetylene/ graphene-stacked composite film for vapor-phase volatile organic compounds. Adv. Funct. Mater., 2013, 23, 6044-6050.
-
(2013)
Adv. Funct. Mater
, vol.23
, pp. 6044-6050
-
-
Wang, X.1
Sun, X.2
Hu, P.A.3
Zhang, J.4
Wang, L.5
Feng, W.6
Lei, S.7
Yang, B.8
Cao, W.9
-
153
-
-
84862790747
-
Gas sensorbased on p-phenylenediamine reduced graphene oxide
-
[153] Hu, N.; Wang, Y.; Chai, J.; Gao, R.; Yang, Z.; Kong, E.S.W.; Zhang, Y. Gas sensorbased on p-phenylenediamine reduced graphene oxide. Sensors Actuators B Chem., 2012, 163, 107-114.
-
(2012)
Sensors Actuators B Chem
, vol.163
, pp. 107-114
-
-
Hu, N.1
Wang, Y.2
Chai, J.3
Gao, R.4
Yang, Z.5
Kong, E.6
Zhang, Y.7
-
154
-
-
79953237084
-
Development of a universal stress sensor for graphene and carbon fibres
-
[154] Frank, O.; Tsoukleri, G.; Riaz, I.; Papagelis, K.; Parthenios, J.; Ferrari, A.C.; Geim, A.K.; Novoselov, K.S.; Galiotisa, C. Development of a universal stress sensor for graphene and carbon fibres. Nat. Commun, 2011, 2, 255.
-
(2011)
Nat. Commun
, vol.2
, pp. 255
-
-
Frank, O.1
Tsoukleri, G.2
Riaz, I.3
Papagelis, K.4
Parthenios, J.5
Ferrari, A.C.6
Geim, A.K.7
Novoselov, K.S.8
Galiotisa, C.9
-
155
-
-
84868109917
-
Graphenebased transparent strain sensor
-
[155] Bae, S.H.; Lee, Y.; Sharma, B.K.; Lee, H.J.; Kim, J.H.; Ahn, J.H. Graphenebased transparent strain sensor. Carbon, 2013, 51, 236-242.
-
(2013)
Carbon
, vol.51
, pp. 236-242
-
-
Bae, S.H.1
Lee, Y.2
Sharma, B.K.3
Lee, H.J.4
Kim, J.H.5
Ahn, J.H.6
-
156
-
-
79961145505
-
Super-elastic graphene ripples for flexible strain sensors
-
[156] Wang, Y.; Yang, R.; Shi, Z.; Zhang, L.; Shi, D.; Wang, E.; Wang, E.; Zhang, G. Super-elastic graphene ripples for flexible strain sensors. ACS Nano, 2011, 5, 3645-3650.
-
(2011)
ACS Nano
, vol.5
, pp. 3645-3650
-
-
Wang, Y.1
Yang, R.2
Shi, Z.3
Zhang, L.4
Shi, D.5
Wang, E.6
Wang, E.7
Zhang, G.8
-
157
-
-
46649104721
-
Potential application of singlelayered graphene sheet as strain sensor
-
[157] Sakhaee-Pour, A.; Ahmadian, M.T.; Vafai, A. Potential application of singlelayered graphene sheet as strain sensor. Solid State Commun., 2008, 147, 336-340.
-
(2008)
Solid State Commun
, vol.147
, pp. 336-340
-
-
Sakhaee-Pour, A.1
Ahmadian, M.T.2
Vafai, A.3
-
158
-
-
84864694008
-
Graphene-enabled silver nanoantenna sensors
-
[158] Reed, J.C.; Zhu, H.; Zhu, A.Y.; Li, C.; Cubukcu, E. Graphene-enabled silver nanoantenna sensors. Nano Letters, 2012, 12, 4090-4094.
-
(2012)
Nano Letters
, vol.12
, pp. 4090-4094
-
-
Reed, J.C.1
Zhu, H.2
Zhu, A.Y.3
Li, C.4
Cubukcu, E.5
-
159
-
-
84867883796
-
A graphenebased surface plasmon sensor
-
[159] Tan, W.C.; Hofmann, M.; Hseieh, Y.P.; Lu, M.L.; Chen, Y.F. A graphenebased surface plasmon sensor. Nano Research, 2012, 5, 695-702.
-
(2012)
Nano Research
, vol.5
, pp. 695-702
-
-
Tan, W.C.1
Hofmann, M.2
Hseieh, Y.P.3
Lu, M.L.4
Chen, Y.F.5
-
160
-
-
58149171788
-
Graphene terahertz generators for molecular circuits and sensors
-
[160] Rangel, N.L.; Seminario, J.A. Graphene terahertz generators for molecular circuits and sensors. J. Phys. Chem. A, 2008, 112, 13699-13705.
-
(2008)
J. Phys. Chem. A
, vol.112
, pp. 13699-13705
-
-
Rangel, N.L.1
Seminario, J.A.2
-
161
-
-
84884979426
-
Pressure sensors based on suspended graphene membranes
-
[161] Smith, A.D.; Vaziri, S.; Niklaus, F.; Fischer, A.C.; Sterner, M.; Delin, A.; Ostling, M.; Lemme, M.C. Pressure sensors based on suspended graphene membranes. Solid State Electron., 2013, 88, 89-94.
-
(2013)
Solid State Electron
, vol.88
, pp. 89-94
-
-
Smith, A.D.1
Vaziri, S.2
Niklaus, F.3
Fischer, A.C.4
Sterner, M.5
Delin, A.6
Ostling, M.7
Lemme, M.C.8
-
162
-
-
78649527520
-
Graphene oxide as a chemically tunable platform for optical applications
-
[162] Loh, K.P.; Bao, Q.L.; Eda, G.; Chowalla, M. Graphene oxide as a chemically tunable platform for optical applications. Nat. Chem., 2012, 2, 1015-1024.
-
(2012)
Nat. Chem
, vol.2
, pp. 1015-1024
-
-
Loh, K.P.1
Bao, Q.L.2
Eda, G.3
Chowalla, M.4
-
163
-
-
63049134883
-
Photoluminescence and band gap modulation in graphene oxide
-
[163] Luo, Z.; Vora, P.M.; Mele, E.J.; Johnson, A.T.C.; Kikkawa, J.M. Photoluminescence and band gap modulation in graphene oxide. Appl. Phys. Lett., 2009, 94, 111909.
-
(1909)
Appl. Phys. Lett
, vol.94
, Issue.11
, pp. 2009
-
-
Luo, Z.1
Vora, P.M.2
Mele, E.J.3
Johnson, A.4
Kikkawa, J.M.5
-
164
-
-
53849085330
-
Nano-graphene oxide for cellular imaging and drug delivery
-
[164] Sun, X.; Liu, Z.; Welsher, K.; Robinson, J.T.; Goodwin, A.; Zaric, S.; Dai, H. Nano-graphene oxide for cellular imaging and drug delivery. Nano Res., 2008, 1, 203-212.
-
(2008)
Nano Res
, vol.1
, pp. 203-212
-
-
Sun, X.1
Liu, Z.2
Welsher, K.3
Robinson, J.T.4
Goodwin, A.5
Zaric, S.6
Dai, H.7
-
165
-
-
55749091960
-
Organic photovoltaic devices based on a novel acceptor material
-
[165] Liu, Z.F.; Liu, Q.; Huang, Y.; Ma, Y.F.; Yin, S.G.; Zhang, X.Y.; Sun W.; Chen, Y.S. Organic photovoltaic devices based on a novel acceptor material: Graphene. Adv. Mater., 2008, 20, 3924-3930.
-
(2008)
Graphene. Adv. Mater
, vol.20
, pp. 3924-3930
-
-
Liu, Z.F.1
Liu, Q.2
Huang, Y.3
Ma, Y.F.4
Yin, S.G.5
Zhang, X.Y.6
Sun, W.7
Chen, Y.S.8
|