Accumulateur Lithium Soufre

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Accumulateur Lithium Soufre ( accumulateur-lithium-soufre )

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(63) Xi, K.; Cao, S.; Peng, X.; Ducati, C.; Kumar, R. V.; Cheetham, A. K. Carbon with hierarchical pores from carbonized metal-organic frameworks for lithium sulphur batteries. Chemical communications 2013, 49, 2192-2194. (64) Qu, Y.; Zhang, Z.; Zhang, X.; Ren, G.; Wang, X.; Lai, Y.; Liu, Y.; Li, J. Synthesis of hierarchical porous honeycomb carbon for lithium-sulfur battery cathode with high rate capability and long cycling stability. Electrochimica Acta 2014, 137, 439-446. (65) Xu, G.; Ding, B.; Nie, P.; Shen, L.; Dou, H.; Zhang, X. Hierarchically porous carbon encapsulating sulfur as a superior cathode material for high performance lithium-sulfur batteries. ACS applied materials & interfaces 2014, 6, 194-199. (66) Jayaprakash, N.; Shen, J.; Moganty, S. S.; Corona, A.; Archer, L. A. Porous hollow carbon@sulfur composites for high-power lithium-sulfur batteries. Angewandte Chemie 2011, 50, 5904-5908. (67) Brun, N.; Sakaushi, K.; Yu, L.; Giebeler, L.; Eckert, J.; Titirici, M. M. Hydrothermal carbon-based nanostructured hollow spheres as electrode materials for high-power lithium-sulfur batteries. Physical chemistry chemical physics : PCCP 2013, 15, 6080-6087. (68) Zheng, G.; Yang, Y.; Cha, J. J.; Hong, S. S.; Cui, Y. Hollow carbon nanofiber-encapsulated sulfur cathodes for high specific capacity rechargeable lithium batteries. Nano letters 2011, 11, 4462- 4467. (69) Li, Q.; Zhang, Z.; Zhang, K.; Fang, J.; Lai, Y.; Li, J. A simple synthesis of hollow carbon nanofiber-sulfur composite via mixed-solvent process for lithium–sulfur batteries. Journal of Power Sources 2014, 256, 137-144. (70) Qu, Y.; Zhang, Z.; Wang, X.; Lai, Y.; Liu, Y.; Li, J. A simple SDS-assisted self-assembly method for the synthesis of hollow carbon nanospheres to encapsulate sulfur for advanced lithium– sulfur batteries. Journal of Materials Chemistry A 2013, 1, 14306. (71) Tang, J.; Yang, J.; Zhou, X. Acetylene black derived hollow carbon nanostructure and its application in lithium–sulfur batteries. RSC Advances 2013, 3, 16936. (72) Böttger-Hiller, F.; Kempe, P.; Cox, G.; Panchenko, A.; Janssen, N.; Petzold, A.; Thurn- Albrecht, T.; Borchardt, L.; Rose, M.; Kaskel, S.; Georgi, C.; Lang, H.; Spange, S. Twin Polymerization at Spherical Hard Templates: An Approach to Size-Adjustable Carbon Hollow Spheres with Micro- or Mesoporous Shells. Angewandte Chemie International Edition 2013, 52, 6088-6091. (73) Chen, S.; Huang, X.; Liu, H.; Sun, B.; Yeoh, W.; Li, K.; Zhang, J.; Wang, G. 3D Hyperbranched Hollow Carbon Nanorod Architectures for High-Performance Lithium-Sulfur Batteries. Advanced Energy Materials 2014, 4, n/a-n/a. (74) Chen, Y.; Li, X.; Park, K.-S.; Hong, J.; Song, J.; Zhou, L.; Mai, Y.-W.; Huang, H.; Goodenough, J. B. Sulfur encapsulated in porous hollow CNTs@CNFs for high-performance lithium- sulfur batteries. Journal of Materials Chemistry A 2014, 2, 10126-10130. (75) Zhao, Y.; Wu, W.; Li, J.; Xu, Z.; Guan, L. Encapsulating MWNTs into Hollow Porous Carbon Nanotubes: A Tube-in-Tube Carbon Nanostructure for High-Performance Lithium-Sulfur Batteries. Advanced Materials 2014, 26, 5113-5118. (76) Zhang, C.; Wu, H. B.; Yuan, C.; Guo, Z.; Lou, X. W. Confining Sulfur in Double-Shelled Hollow Carbon Spheres for Lithium–Sulfur Batteries. Angewandte Chemie International Edition 2012, 51, 9592-9595. (77) Liu, X.; Zhu, K.; Tian, J.; Tang, Q.; Shan, Z. Preparation of yolk-shell sulfur/carbon nanocomposite via an organic solvent route for lithium–sulfur batteries. Journal of Solid State Electrochemistry 2014, 18, 2077-2085. (78) Zhou, W.; Yu, Y.; Chen, H.; DiSalvo, F. J.; Abruna, H. D. Yolk-shell structure of polyaniline-coated sulfur for lithium-sulfur batteries. Journal of the American Chemical Society 2013, 135, 16736-16743. (79) Demir-Cakan, R.; Morcrette, M.; Nouar, F.; Davoisne, C.; Devic, T.; Gonbeau, D.; Dominko, R.; Serre, C.; Férey, G.; Tarascon, J.-M. Cathode Composites for Li–S Batteries via the Use of Oxygenated Porous Architectures. Journal of the American Chemical Society 2011, 133, 16154-16160. 238 References

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