-
1
-
-
38949102073
-
Building Better Batteries
-
Armand, M.; Tarascon, J. M. Building Better Batteries Nature 2008, 451, 652-657 10.1038/451652a
-
(2008)
Nature
, vol.451
, pp. 652-657
-
-
Armand, M.1
Tarascon, J.M.2
-
2
-
-
79851488669
-
4 Cathode Material for Lithium-Ion Batteries
-
4 Cathode Material for Lithium-Ion Batteries Energy Environ. Sci. 2011, 4, 269-284 10.1039/C0EE00029A
-
(2011)
Energy Environ. Sci.
, vol.4
, pp. 269-284
-
-
Yuan, L.X.1
Wang, Z.H.2
Zhang, W.X.3
Hu, X.L.4
Chen, J.T.5
Huang, Y.H.6
Goodenough, J.B.7
-
3
-
-
84903362570
-
Where Do Batteries End and Supercapacitors Begin?
-
Simon, P.; Gogotsi, Y.; Dunn, B. Where Do Batteries End and Supercapacitors Begin? Science 2014, 343, 1210-1211 10.1126/science.1249625
-
(2014)
Science
, vol.343
, pp. 1210-1211
-
-
Simon, P.1
Gogotsi, Y.2
Dunn, B.3
-
4
-
-
84863721145
-
Sodium and Sodium-Ion Energy Storage Batteries
-
Ellis, B. L.; Nazar, L. F. Sodium and Sodium-Ion Energy Storage Batteries Curr. Opin. Solid State Mater. Sci. 2012, 16, 168-177 10.1016/j.cossms.2012.04.002
-
(2012)
Curr. Opin. Solid State Mater. Sci.
, vol.16
, pp. 168-177
-
-
Ellis, B.L.1
Nazar, L.F.2
-
5
-
-
84873405642
-
Sodium-Ion Batteries
-
Slater, M. D.; Kim, D.; Lee, E.; Johnson, C. S. Sodium-Ion Batteries Adv. Funct. Mater. 2013, 23, 947-958 10.1002/adfm.201200691
-
(2013)
Adv. Funct. Mater.
, vol.23
, pp. 947-958
-
-
Slater, M.D.1
Kim, D.2
Lee, E.3
Johnson, C.S.4
-
6
-
-
84857615154
-
Na-Ion Batteries, Recent Advances and Present Challenges to Become Low Cost Energy Storage Systems
-
Palomares, V.; Serras, P.; Villaluenga, I.; Hueso, K. B.; Carretero-Gonzalez, J.; Rojo, T. Na-Ion Batteries, Recent Advances and Present Challenges to Become Low Cost Energy Storage Systems Energy Environ. Sci. 2012, 5, 5884-5901 10.1039/c2ee02781j
-
(2012)
Energy Environ. Sci.
, vol.5
, pp. 5884-5901
-
-
Palomares, V.1
Serras, P.2
Villaluenga, I.3
Hueso, K.B.4
Carretero-Gonzalez, J.5
Rojo, T.6
-
7
-
-
84882594139
-
Room-Temperature Stationary Sodium-Ion Batteries for Large-Scale Electric Energy Storage
-
Pan, H. L.; Hu, Y. S.; Chen, L. Q. Room-Temperature Stationary Sodium-Ion Batteries for Large-Scale Electric Energy Storage Energy Environ. Sci. 2013, 6, 2338-2360 10.1039/c3ee40847g
-
(2013)
Energy Environ. Sci.
, vol.6
, pp. 2338-2360
-
-
Pan, H.L.1
Hu, Y.S.2
Chen, L.Q.3
-
8
-
-
84882991556
-
Charge Carriers in Rechargeable Batteries: Na Ions vs. Li Ions
-
Hong, S. Y.; Kim, Y.; Park, Y.; Choi, A.; Choi, N. S.; Lee, K. T. Charge Carriers in Rechargeable Batteries: Na Ions vs. Li Ions Energy Environ. Sci. 2013, 6, 2067-2081 10.1039/c3ee40811f
-
(2013)
Energy Environ. Sci.
, vol.6
, pp. 2067-2081
-
-
Hong, S.Y.1
Kim, Y.2
Park, Y.3
Choi, A.4
Choi, N.S.5
Lee, K.T.6
-
9
-
-
80052086268
-
Enabling Sodium Batteries Using Lithium-Substituted Sodium Layered Transition Metal Oxide Cathodes
-
Kim, D.; Kang, S. H.; Slater, M.; Rood, S.; Vaughey, J. T.; Karan, N.; Balasubramanian, M.; Johnson, C. S. Enabling Sodium Batteries Using Lithium-Substituted Sodium Layered Transition Metal Oxide Cathodes Adv. Energy Mater. 2011, 1, 333-336 10.1002/aenm.201000061
-
(2011)
Adv. Energy Mater.
, vol.1
, pp. 333-336
-
-
Kim, D.1
Kang, S.H.2
Slater, M.3
Rood, S.4
Vaughey, J.T.5
Karan, N.6
Balasubramanian, M.7
Johnson, C.S.8
-
10
-
-
84876544264
-
3 Cathode for Room-Temperature Sodium-Ion Batteries
-
3 Cathode for Room-Temperature Sodium-Ion Batteries Adv. Energy Mater. 2013, 3, 156-160 10.1002/aenm.201200558
-
(2013)
Adv. Energy Mater.
, vol.3
, pp. 156-160
-
-
Jian, Z.L.1
Han, W.Z.2
Lu, X.3
Yang, H.X.4
Hu, Y.S.5
Zhou, J.6
Zhou, Z.B.7
Li, J.Q.8
Chen, W.9
Chen, D.F.10
Chen, L.Q.11
-
11
-
-
84862696324
-
2 Made from Earth-Abundant Elements for Rechargeable Na Batteries
-
2 Made from Earth-Abundant Elements for Rechargeable Na Batteries Nat. Mater. 2012, 11, 512-517 10.1038/nmat3309
-
(2012)
Nat. Mater.
, vol.11
, pp. 512-517
-
-
Yabuuchi, N.1
Kajiyama, M.2
Iwatate, J.3
Nishikawa, H.4
Hitomi, S.5
Okuyama, R.6
Usui, R.7
Yamada, Y.8
Komaba, S.9
-
12
-
-
84896971809
-
2@Graphene Film for a Sodium-Ion Battery Cathode
-
2@Graphene Film for a Sodium-Ion Battery Cathode ACS Appl. Mater. Interfaces 2014, 6, 4242-4247 10.1021/am405970s
-
(2014)
ACS Appl. Mater. Interfaces
, vol.6
, pp. 4242-4247
-
-
Zhu, H.L.1
Lee, K.T.2
Hitz, G.T.3
Han, X.G.4
Li, Y.Y.5
Wan, J.Y.6
Lacey, S.7
Cresce, A.V.8
Xu, K.9
Wachsman, E.10
Hu, L.B.11
-
13
-
-
0024068597
-
Electrochemical Intercalation of Sodium in Graphite
-
Pascal, G. E.; Fouletier, M. Electrochemical Intercalation of Sodium in Graphite Solid State Ionics 1988, 28, 1172-1175 10.1016/0167-2738(88)90351-7
-
(1988)
Solid State Ionics
, vol.28
, pp. 1172-1175
-
-
Pascal, G.E.1
Fouletier, M.2
-
14
-
-
84902001334
-
Expanded Graphite as Superior Anode for Sodium-Ion Batteries
-
Wen, Y.; He, K.; Zhu, Y. J.; Han, F. D.; Xu, Y. H.; Matsuda, I.; Ishii, Y.; Cumings, J.; Wang, C. S. Expanded Graphite as Superior Anode for Sodium-Ion Batteries Nat. Commun. 2014, 5, 4033-4042 10.1038/ncomms5033
-
(2014)
Nat. Commun.
, vol.5
, pp. 4033-4042
-
-
Wen, Y.1
He, K.2
Zhu, Y.J.3
Han, F.D.4
Xu, Y.H.5
Matsuda, I.6
Ishii, Y.7
Cumings, J.8
Wang, C.S.9
-
15
-
-
84879932419
-
First-Principles Study of Alkali Metal-Graphite Intercalation Compounds
-
Nobuhara, K.; Nakayama, H.; Nose, M.; Nakanishi, S.; Iba, H. First-Principles Study of Alkali Metal-Graphite Intercalation Compounds J. Power Sources 2013, 243, 585-587 10.1016/j.jpowsour.2013.06.057
-
(2013)
J. Power Sources
, vol.243
, pp. 585-587
-
-
Nobuhara, K.1
Nakayama, H.2
Nose, M.3
Nakanishi, S.4
Iba, H.5
-
16
-
-
84880166567
-
Tin Anode for Sodium-Ion Batteries Using Natural Wood Fiber as a Mechanical Buffer and Electrolyte Reservoir
-
Zhu, H. L.; Jia, Z.; Chen, Y. C.; Weadock, N.; Wan, J. Y.; Vaaland, O.; Han, X. G.; Li, T.; Hu, L. B. Tin Anode for Sodium-Ion Batteries Using Natural Wood Fiber as a Mechanical Buffer and Electrolyte Reservoir Nano Lett. 2013, 13, 3093-3100 10.1021/nl400998t
-
(2013)
Nano Lett.
, vol.13
, pp. 3093-3100
-
-
Zhu, H.L.1
Jia, Z.2
Chen, Y.C.3
Weadock, N.4
Wan, J.Y.5
Vaaland, O.6
Han, X.G.7
Li, T.8
Hu, L.B.9
-
17
-
-
84892151010
-
Atomic-Layer-Deposition Oxide Nanoglue for Sodium Ion Batteries
-
Han, X. G.; Liu, Y.; Jia, Z.; Chen, Y. C.; Wan, J. Y.; Weadock, N.; Gaskell, K. J.; Li, T.; Hu, L. B. Atomic-Layer-Deposition Oxide Nanoglue for Sodium Ion Batteries Nano Lett. 2014, 14, 139-147 10.1021/nl4035626
-
(2014)
Nano Lett.
, vol.14
, pp. 139-147
-
-
Han, X.G.1
Liu, Y.2
Jia, Z.3
Chen, Y.C.4
Wan, J.Y.5
Weadock, N.6
Gaskell, K.J.7
Li, T.8
Hu, L.B.9
-
18
-
-
84874069759
-
Electrochemical Performance of Porous Carbon/Tin Composite Anodes for Sodium-Ion and Lithium-Ion Batteries
-
Xu, Y.; Zhu, Y.; Liu, Y.; Wang, C. Electrochemical Performance of Porous Carbon/Tin Composite Anodes for Sodium-Ion and Lithium-Ion Batteries Adv. Energy Mater. 2013, 3, 128-133 10.1002/aenm.201200346
-
(2013)
Adv. Energy Mater.
, vol.3
, pp. 128-133
-
-
Xu, Y.1
Zhu, Y.2
Liu, Y.3
Wang, C.4
-
19
-
-
84862527593
-
High Capacity Na-Storage and Superior Cyclability of Nanocomposite Sb/C Anode for Na-Ion Batteries
-
Qian, J.; Chen, Y.; Wu, L.; Cao, Y.; Ai, X.; Yang, H. High Capacity Na-Storage and Superior Cyclability of Nanocomposite Sb/C Anode for Na-Ion Batteries Chem. Commun. 2012, 48, 7070-7072 10.1039/c2cc32730a
-
(2012)
Chem. Commun.
, vol.48
, pp. 7070-7072
-
-
Qian, J.1
Chen, Y.2
Wu, L.3
Cao, Y.4
Ai, X.5
Yang, H.6
-
20
-
-
84880816754
-
Electrospun Sb/C Fibers for a Stable and Fast Sodium-Ion Battery Anode
-
Zhu, Y. J.; Han, X. G.; Xu, Y. H.; Liu, Y. H.; Zheng, S. Y.; Xu, K.; Hu, L. B.; Wang, C. S. Electrospun Sb/C Fibers for a Stable and Fast Sodium-Ion Battery Anode ACS Nano 2013, 7, 6378-6386 10.1021/nn4025674
-
(2013)
ACS Nano
, vol.7
, pp. 6378-6386
-
-
Zhu, Y.J.1
Han, X.G.2
Xu, Y.H.3
Liu, Y.H.4
Zheng, S.Y.5
Xu, K.6
Hu, L.B.7
Wang, C.S.8
-
21
-
-
84883863821
-
2: A New Anode Material for Rechargeable Sodium Ion Batteries
-
2: A New Anode Material for Rechargeable Sodium Ion Batteries Chem. Commun. 2013, 49, 8973-8975 10.1039/c3cc45254a
-
(2013)
Chem. Commun.
, vol.49
, pp. 8973-8975
-
-
Xu, Y.1
Lotfabad, E.M.2
Wang, H.L.3
Farbod, B.4
Xu, Z.W.5
Kohandehghan, A.6
Mitlin, D.7
-
22
-
-
84896866308
-
Transition Metal Oxides for High Performance Sodium Ion Battery Anodes
-
Jiang, Y. Z.; Hu, M. J.; Zhang, D.; Yuan, T. Z.; Sun, W. P.; Xu, B.; Yan, M. Transition Metal Oxides for High Performance Sodium Ion Battery Anodes Nano Energy 2014, 5, 60-66 10.1016/j.nanoen.2014.02.002
-
(2014)
Nano Energy
, vol.5
, pp. 60-66
-
-
Jiang, Y.Z.1
Hu, M.J.2
Zhang, D.3
Yuan, T.Z.4
Sun, W.P.5
Xu, B.6
Yan, M.7
-
23
-
-
79960489312
-
Reversible Sodium Ion Insertion in Single Crystalline Manganese Oxide Nanowires with Long Cycle Life
-
Cao, Y.; Xiao, L.; Wang, W.; Choi, D.; Nie, Z.; Yu, J.; Saraf, L. V.; Yang, Z.; Liu, J. Reversible Sodium Ion Insertion in Single Crystalline Manganese Oxide Nanowires with Long Cycle Life Adv. Mater. 2011, 23, 3155-3160 10.1002/adma.201100904
-
(2011)
Adv. Mater.
, vol.23
, pp. 3155-3160
-
-
Cao, Y.1
Xiao, L.2
Wang, W.3
Choi, D.4
Nie, Z.5
Yu, J.6
Saraf, L.V.7
Yang, Z.8
Liu, J.9
-
24
-
-
84891672108
-
Fe2O3 Nanocrystals Anchored onto Graphene Nanosheets as the Anode Material for Low-Cost Sodium-Ion Batteries
-
Jian, Z. L.; Zhao, B.; Liu, P.; Li, F. J.; Zheng, M. B.; Chen, M. W.; Shi, Y.; Zhou, H. S. Fe2O3 Nanocrystals Anchored onto Graphene Nanosheets as the Anode Material for Low-Cost Sodium-Ion Batteries Chem. Commun. 2014, 50, 1215-1217 10.1039/C3CC47977C
-
(2014)
Chem. Commun.
, vol.50
, pp. 1215-1217
-
-
Jian, Z.L.1
Zhao, B.2
Liu, P.3
Li, F.J.4
Zheng, M.B.5
Chen, M.W.6
Shi, Y.7
Zhou, H.S.8
-
25
-
-
84876527043
-
2@Graphene Nanocomposites as Anode Materials for Na-Ion Batteries with Superior Electrochemical Performance
-
2@Graphene Nanocomposites as Anode Materials for Na-Ion Batteries with Superior Electrochemical Performance Chem. Commun. 2013, 49, 3131-3133 10.1039/c3cc40448j
-
(2013)
Chem. Commun.
, vol.49
, pp. 3131-3133
-
-
Su, D.W.1
Ahn, H.J.2
Wang, G.X.3
-
26
-
-
84863691641
-
Sodium Terephthalate as an Organic Anode Material for Sodium Ion Batteries
-
Park, Y.; Shin, D. S.; Woo, S. H.; Choi, N. S.; Shin, K. H.; Oh, S. M.; Lee, K. T.; Hong, S. Y. Sodium Terephthalate as an Organic Anode Material for Sodium Ion Batteries Adv. Mater. 2012, 24, 3562-3567 10.1002/adma.201201205
-
(2012)
Adv. Mater.
, vol.24
, pp. 3562-3567
-
-
Park, Y.1
Shin, D.S.2
Woo, S.H.3
Choi, N.S.4
Shin, K.H.5
Oh, S.M.6
Lee, K.T.7
Hong, S.Y.8
-
27
-
-
84884225038
-
A Low Cost, All-Organic Na-Ion Battery Based on Polymeric Cathode and Anode
-
Deng, W. W.; Liang, X. M.; Wu, X. Y.; Qian, J. F.; Cao, Y. L.; Ai, X. P.; Feng, J. W.; Yang, H. X. A Low Cost, All-Organic Na-Ion Battery Based on Polymeric Cathode and Anode Sci. Rep. 2013, 3, 2671 10.1038/srep02671
-
(2013)
Sci. Rep.
, vol.3
, pp. 2671
-
-
Deng, W.W.1
Liang, X.M.2
Wu, X.Y.3
Qian, J.F.4
Cao, Y.L.5
Ai, X.P.6
Feng, J.W.7
Yang, H.X.8
-
28
-
-
84942108857
-
Humic Acid as Promising Organic Anodes for Lithium/Sodium Ion Batteries
-
Zhu, H.; Yin, J.; Zhao, X.; Wang, C.; Yang, X. Humic Acid as Promising Organic Anodes for Lithium/Sodium Ion Batteries Chem. Commun. 2015, 51, 14708-14711 10.1039/C5CC04772B
-
(2015)
Chem. Commun.
, vol.51
, pp. 14708-14711
-
-
Zhu, H.1
Yin, J.2
Zhao, X.3
Wang, C.4
Yang, X.5
-
29
-
-
84890813938
-
Free-Standing and Binder-Free Sodium-Ion Electrodes with Ultralong Cycle Life and High Rate Performance Based on Porous Carbon Nanofibers
-
Li, W.; Zeng, L.; Yang, Z.; Gu, L.; Wang, J.; Liu, X.; Cheng, J.; Yu, Y. Free-Standing and Binder-Free Sodium-Ion Electrodes with Ultralong Cycle Life and High Rate Performance Based on Porous Carbon Nanofibers Nanoscale 2014, 6, 693-698 10.1039/C3NR05022J
-
(2014)
Nanoscale
, vol.6
, pp. 693-698
-
-
Li, W.1
Zeng, L.2
Yang, Z.3
Gu, L.4
Wang, J.5
Liu, X.6
Cheng, J.7
Yu, Y.8
-
30
-
-
84904720096
-
High-Density Sodium and Lithium Ion Battery Anodes from Banana Peels
-
Lotfabad, E. M.; Ding, J.; Cui, K.; Kohandehghan, A.; Kalisvaart, W. P.; Hazelton, M.; Mitlin, D. High-Density Sodium and Lithium Ion Battery Anodes from Banana Peels ACS Nano 2014, 8, 7115-7129 10.1021/nn502045y
-
(2014)
ACS Nano
, vol.8
, pp. 7115-7129
-
-
Lotfabad, E.M.1
Ding, J.2
Cui, K.3
Kohandehghan, A.4
Kalisvaart, W.P.5
Hazelton, M.6
Mitlin, D.7
-
31
-
-
84882707016
-
Carbon Nanofibers Derived from Cellulose Nanofibers as a Long-Life Anode Material for Rechargeable Sodium-Ion Batteries
-
Luo, W.; Schardt, J.; Bommier, C.; Wang, B.; Razink, J.; Simonsen, J.; Ji, X. Carbon Nanofibers Derived from Cellulose Nanofibers as a Long-Life Anode Material for Rechargeable Sodium-Ion Batteries J. Mater. Chem. A 2013, 1, 10662-10666 10.1039/c3ta12389h
-
(2013)
J. Mater. Chem. A
, vol.1
, pp. 10662-10666
-
-
Luo, W.1
Schardt, J.2
Bommier, C.3
Wang, B.4
Razink, J.5
Simonsen, J.6
Ji, X.7
-
32
-
-
84863832016
-
Sodium Ion Insertion in Hollow Carbon Nanowires for Battery Applications
-
Cao, Y.; Xiao, L.; Sushko, M. L.; Wang, W.; Schwenzer, B.; Xiao, J.; Nie, Z.; Saraf, L. V.; Yang, Z.; Liu, J. Sodium Ion Insertion in Hollow Carbon Nanowires for Battery Applications Nano Lett. 2012, 12, 3783-3787 10.1021/nl3016957
-
(2012)
Nano Lett.
, vol.12
, pp. 3783-3787
-
-
Cao, Y.1
Xiao, L.2
Sushko, M.L.3
Wang, W.4
Schwenzer, B.5
Xiao, J.6
Nie, Z.7
Saraf, L.V.8
Yang, Z.9
Liu, J.10
-
33
-
-
0033751756
-
High Capacity Anode Materials for Rechargeable Sodium-Ion Batteries
-
Stevens, D. A.; Dahn, J. R. High Capacity Anode Materials for Rechargeable Sodium-Ion Batteries J. Electrochem. Soc. 2000, 147, 1271-1273 10.1149/1.1393348
-
(2000)
J. Electrochem. Soc.
, vol.147
, pp. 1271-1273
-
-
Stevens, D.A.1
Dahn, J.R.2
-
34
-
-
84915811922
-
Amorphous Monodispersed Hard Carbon Micro-Spherules Derived from Biomass as a High Performance Negative Electrode Material for Sodium-Ion Batteries
-
Li, Y. M.; Xu, S. Y.; Wu, X. Y.; Yu, J. Z.; Wang, Y. S.; Hu, Y. S.; Li, H.; Chen, L. Q.; Huang, X. J. Amorphous Monodispersed Hard Carbon Micro-Spherules Derived From Biomass as a High Performance Negative Electrode Material for Sodium-Ion Batteries J. Mater. Chem. A 2015, 3, 71-77 10.1039/C4TA05451B
-
(2015)
J. Mater. Chem. A
, vol.3
, pp. 71-77
-
-
Li, Y.M.1
Xu, S.Y.2
Wu, X.Y.3
Yu, J.Z.4
Wang, Y.S.5
Hu, Y.S.6
Li, H.7
Chen, L.Q.8
Huang, X.J.9
-
35
-
-
84922455797
-
Low-Surface-Area Hard Carbon Anode for Na-Ion Batteries via Graphene Oxide as a Dehydration Agent
-
Luo, W.; Bommier, C.; Jian, Z.; Li, X.; Carter, R.; Vail, S.; Lu, Y.; Lee, J.-J.; Ji, X. Low-Surface-Area Hard Carbon Anode for Na-Ion Batteries via Graphene Oxide as a Dehydration Agent ACS Appl. Mater. Interfaces 2015, 7, 2626-2631 10.1021/am507679x
-
(2015)
ACS Appl. Mater. Interfaces
, vol.7
, pp. 2626-2631
-
-
Luo, W.1
Bommier, C.2
Jian, Z.3
Li, X.4
Carter, R.5
Vail, S.6
Lu, Y.7
Lee, J.-J.8
Ji, X.9
-
36
-
-
78651515343
-
TEMPO-Oxidized Cellulose Nanofibers
-
Isogai, A.; Saito, T.; Fukuzumi, H. TEMPO-Oxidized Cellulose Nanofibers Nanoscale 2011, 3, 71-85 10.1039/C0NR00583E
-
(2011)
Nanoscale
, vol.3
, pp. 71-85
-
-
Isogai, A.1
Saito, T.2
Fukuzumi, H.3
-
37
-
-
84905270147
-
Light Management in Flexible Glass by Wood Cellulose Coating
-
Fang, Z. Q.; Zhu, H. L.; Li, Y. Y.; Liu, Z.; Dai, J. Q.; Preston, C.; Garner, S.; Cimo, P.; Chai, X. S.; Chen, G.; Hu, L. B. Light Management in Flexible Glass by Wood Cellulose Coating Sci. Rep. 2014, 4, 5842 10.1038/srep05842
-
(2014)
Sci. Rep.
, vol.4
, pp. 5842
-
-
Fang, Z.Q.1
Zhu, H.L.2
Li, Y.Y.3
Liu, Z.4
Dai, J.Q.5
Preston, C.6
Garner, S.7
Cimo, P.8
Chai, X.S.9
Chen, G.10
Hu, L.B.11
-
38
-
-
84894137215
-
Novel Nanostructured Paper with Ultrahigh Transparency and Ultrahigh Haze for Solar Cells
-
Fang, Z. Q.; Zhu, H. L.; Yuan, Y. B.; Ha, D.; Zhu, S. Z.; Preston, C.; Chen, Q. X.; Li, Y. Y.; Han, X. G.; Lee, S.; Chen, G.; Li, T.; Munday, J.; Huang, J. S.; Hu, L. B. Novel Nanostructured Paper with Ultrahigh Transparency and Ultrahigh Haze for Solar Cells Nano Lett. 2014, 14, 765-773 10.1021/nl404101p
-
(2014)
Nano Lett.
, vol.14
, pp. 765-773
-
-
Fang, Z.Q.1
Zhu, H.L.2
Yuan, Y.B.3
Ha, D.4
Zhu, S.Z.5
Preston, C.6
Chen, Q.X.7
Li, Y.Y.8
Han, X.G.9
Lee, S.10
Chen, G.11
Li, T.12
Munday, J.13
Huang, J.S.14
Hu, L.B.15
-
39
-
-
57049182410
-
Characterization of Carbons Derived from Cellulose and Lignin and Their Oxidative Behavior
-
Xie, X. F.; Goodell, B.; Zhang, D. J.; Nagle, D. C.; Qian, Y. H.; Peterson, M. L.; Jellison, J. Characterization of Carbons Derived from Cellulose and Lignin and Their Oxidative Behavior Bioresour. Technol. 2009, 100, 1797-1802 10.1016/j.biortech.2008.09.057
-
(2009)
Bioresour. Technol.
, vol.100
, pp. 1797-1802
-
-
Xie, X.F.1
Goodell, B.2
Zhang, D.J.3
Nagle, D.C.4
Qian, Y.H.5
Peterson, M.L.6
Jellison, J.7
-
40
-
-
84874447352
-
Rice Paper-Derived 3D-Porous Carbon Films for Lithium-Ion Batteries
-
Zhang, L. C.; Hu, Z.; Wang, L.; Teng, F.; Yu, Y.; Chen, C. H. Rice Paper-Derived 3D-Porous Carbon Films for Lithium-Ion Batteries Electrochim. Acta 2013, 89, 310-316 10.1016/j.electacta.2012.11.042
-
(2013)
Electrochim. Acta
, vol.89
, pp. 310-316
-
-
Zhang, L.C.1
Hu, Z.2
Wang, L.3
Teng, F.4
Yu, Y.5
Chen, C.H.6
-
41
-
-
84890502287
-
Lignin-Derived Fused Electrospun Carbon Fibrous Mats as High Performance Anode Materials for Lithium Ion Batteries
-
Wang, S. X.; Yang, L. P.; Stubbs, L. P.; Li, X.; He, C. B. Lignin-Derived Fused Electrospun Carbon Fibrous Mats as High Performance Anode Materials for Lithium Ion Batteries ACS Appl. Mater. Interfaces 2013, 5, 12275-12282 10.1021/am4043867
-
(2013)
ACS Appl. Mater. Interfaces
, vol.5
, pp. 12275-12282
-
-
Wang, S.X.1
Yang, L.P.2
Stubbs, L.P.3
Li, X.4
He, C.B.5
-
42
-
-
84874873802
-
Cellulose-Based Bio- and Nanocomposites: A Review
-
Kalia, S.; Dufresne, A.; Cherian, B. M.; Kaith, B. S.; Averous, L.; Njuguna, J.; Nassiopoulos, E. Cellulose-Based Bio- and Nanocomposites: A Review Int. J. Polym. Sci. 2011, 2011, 1-35 10.1155/2011/837875
-
(2011)
Int. J. Polym. Sci.
, vol.2011
, pp. 1-35
-
-
Kalia, S.1
Dufresne, A.2
Cherian, B.M.3
Kaith, B.S.4
Averous, L.5
Njuguna, J.6
Nassiopoulos, E.7
-
43
-
-
77954604320
-
Entire Surface Oxidation of Various Cellulose Microfibrils by TEMPO-Mediated Oxidation
-
Okita, Y.; Saito, T.; Isogai, A. Entire Surface Oxidation of Various Cellulose Microfibrils by TEMPO-Mediated Oxidation Biomacromolecules 2010, 11, 1696-1700 10.1021/bm100214b
-
(2010)
Biomacromolecules
, vol.11
, pp. 1696-1700
-
-
Okita, Y.1
Saito, T.2
Isogai, A.3
-
44
-
-
84904720453
-
Biomass Derived Hard Carbon Used as a High Performance Anode Material for Sodium Ion Batteries
-
Hong, K. L.; Qie, L.; Zeng, R.; Yi, Z. Q.; Zhang, W.; Wang, D.; Yin, W.; Wu, C.; Fan, Q. J.; Zhang, W. X.; Huang, Y. H. Biomass Derived Hard Carbon Used as a High Performance Anode Material for Sodium Ion Batteries J. Mater. Chem. A 2014, 2, 12733-12738 10.1039/C4TA02068E
-
(2014)
J. Mater. Chem. A
, vol.2
, pp. 12733-12738
-
-
Hong, K.L.1
Qie, L.2
Zeng, R.3
Yi, Z.Q.4
Zhang, W.5
Wang, D.6
Yin, W.7
Wu, C.8
Fan, Q.J.9
Zhang, W.X.10
Huang, Y.H.11
-
45
-
-
84891368521
-
Carbon Nanosheet Frameworks Derived from Peat Moss as High Performance Sodium Ion Battery Anodes
-
Ding, J.; Wang, H.; Li, Z.; Kohandehghan, A.; Cui, K.; Xu, Z.; Zahiri, B.; Tan, X.; Lotfabad, E. M.; Olsen, B. C.; Mitlin, D. Carbon Nanosheet Frameworks Derived from Peat Moss as High Performance Sodium Ion Battery Anodes ACS Nano 2013, 7, 11004-11015 10.1021/nn404640c
-
(2013)
ACS Nano
, vol.7
, pp. 11004-11015
-
-
Ding, J.1
Wang, H.2
Li, Z.3
Kohandehghan, A.4
Cui, K.5
Xu, Z.6
Zahiri, B.7
Tan, X.8
Lotfabad, E.M.9
Olsen, B.C.10
Mitlin, D.11
-
46
-
-
84908611617
-
Origin of non-SEI related coulombic efficiency loss in carbons tested against Na and Li
-
Memarzadeh Lotfabad, E.; Kalisvaart, P.; Kohandehghan, A.; Karpuzov, D.; Mitlin, D. Origin of non-SEI related coulombic efficiency loss in carbons tested against Na and Li J. Mater. Chem. A 2014, 2, 19685-19695 10.1039/C4TA04995K
-
(2014)
J. Mater. Chem. A
, vol.2
, pp. 19685-19695
-
-
Memarzadeh Lotfabad, E.1
Kalisvaart, P.2
Kohandehghan, A.3
Karpuzov, D.4
Mitlin, D.5
-
47
-
-
84924425570
-
Peanut shell hybrid sodium ion capacitor with extreme energy-power rivals lithium ion capacitors
-
Ding, J.; Wang, H.; Li, Z.; Cui, K.; Karpuzov, D.; Tan, X.; Kohandehghan, A.; Mitlin, D. Peanut shell hybrid sodium ion capacitor with extreme energy-power rivals lithium ion capacitors Energy Environ. Sci. 2015, 8, 941-955 10.1039/C4EE02986K
-
(2015)
Energy Environ. Sci.
, vol.8
, pp. 941-955
-
-
Ding, J.1
Wang, H.2
Li, Z.3
Cui, K.4
Karpuzov, D.5
Tan, X.6
Kohandehghan, A.7
Mitlin, D.8
|