PDF Publication Title:
Text from PDF Page: 245
(118) Sun, J.; Huang, Y.; Wang, W.; Yu, Z.; Wang, A.; Yuan, K. Preparation and electrochemical characterization of the porous sulfur cathode using a gelatin binder. Electrochemistry Communications 2008, 10, 930-933. (119) Zhang, Z.; Bao, W.; Lu, H.; Jia, M.; Xie, K.; Lai, Y.; Li, J. Water-Soluble Polyacrylic Acid as a Binder for Sulfur Cathode in Lithium-Sulfur Battery. ECS Electrochemistry Letters 2012, 1, A34-A37. (120) Lacey, M. J.; Jeschull, F.; Edström, K.; Brandell, D. Functional, water-soluble binders for improved capacity and stability of lithium–sulfur batteries. Journal of Power Sources 2014, 264, 8-14. (121) Song, J.; Xu, T.; Gordin, M. L.; Zhu, P.; Lv, D.; Jiang, Y.-B.; Chen, Y.; Duan, Y.; Wang, D. Nitrogen-Doped Mesoporous Carbon Promoted Chemical Adsorption of Sulfur and Fabrication of High- Areal-Capacity Sulfur Cathode with Exceptional Cycling Stability for Lithium-Sulfur Batteries. Advanced Functional Materials 2014, 24, 1243-1250. (122) Gao, J.; Abruña, H. D. Key Parameters Governing the Energy Density of Rechargeable Li/S Batteries. The Journal of Physical Chemistry Letters 2014, 5, 882-885. (123) Hagen, M.; Fanz, P.; Tübke, J. Cell energy density and electrolyte/sulfur ratio in Li–S cells. Journal of Power Sources 2014, 264, 30-34. (124) Elazari, R.; Salitra, G.; Garsuch, A.; Panchenko, A.; Aurbach, D. Sulfur-impregnated activated carbon fiber cloth as a binder-free cathode for rechargeable Li-S batteries. Adv Mater 2011, 23, 5641-5644. (125) Ding, N.; Chien, S. W.; Hor, T. S. A.; Liu, Z.; Zong, Y. Key parameters in design of lithium sulfur batteries. Journal of Power Sources 2014, 269, 111-116. (126) Barchasz, C.; Mesguich, F.; Dijon, J.; Leprêtre, J.-C.; Patoux, S.; Alloin, F. Novel positive electrode architecture for rechargeable lithium/sulfur batteries. Journal of Power Sources 2012, 211, 19-26. (127) Chung, S.-H.; Manthiram, A. Lithium–sulfur batteries with superior cycle stability by employing porous current collectors. Electrochimica Acta 2013, 107, 569-576. (128) Chung, S.-H.; Manthiram, A. Nano-cellular carbon current collectors with stable cyclability for Li–S batteries. Journal of Materials Chemistry A 2013, 1, 9590. (129) Chung, S. H.; Manthiram, A. A hierarchical carbonized paper with controllable thickness as a modulable interlayer system for high performance Li-S batteries. Chemical communications 2014, 50, 4184-4187. (130) Zhou, G.; Wang, D.-W.; Li, F.; Hou, P.-X.; Yin, L.; Liu, C.; Lu, G. Q.; Gentle, I. R.; Cheng, H.-M. A flexible nanostructured sulphur–carbon nanotube cathode with high rate performance for Li-S batteries. Energy & Environmental Science 2012, 5, 8901. (131) Hagen, M.; Dörfler, S.; Althues, H.; Tübke, J.; Hoffmann, M. J.; Kaskel, S.; Pinkwart, K. Lithium–sulphur batteries – binder free carbon nanotubes electrode examined with various electrolytes. Journal of Power Sources 2012, 213, 239-248. (132) Hagen, M.; Feisthammel, G.; Fanz, P.; Grossmann, H. T.; Dorfler, S.; Tubke, J.; Hoffmann, M. J.; Borner, D.; Joos, M.; Althues, H.; Kaskel, S. Sulfur Cathodes with Carbon Current Collector for Li-S cells. Journal of the Electrochemical Society 2013, 160, A996-A1002. (133) Lu, S.; Chen, Y.; Wu, X.; Wang, Z.; Lv, L.; Qin, W.; Jiang, L. Binder-free cathodes based on sulfur–carbon nanofibers composites for lithium–sulfur batteries. RSC Advances 2014, 4, 18052. (134) Fu, Y.; Su, Y. S.; Manthiram, A. Highly reversible lithium/dissolved polysulfide batteries with carbon nanotube electrodes. Angewandte Chemie 2013, 52, 6930-6935. (135) Dorfler, S.; Hagen, M.; Althues, H.; Tubke, J.; Kaskel, S.; Hoffmann, M. J. High capacity vertical aligned carbon nanotube/sulfur composite cathodes for lithium-sulfur batteries. Chemical communications 2012, 48, 4097-4099. (136) Chung, S.-H.; Manthiram, A. Low-cost, porous carbon current collector with high sulfur loading for lithium–sulfur batteries. Electrochemistry Communications 2014, 38, 91-95. (137) Su, Y. S.; Manthiram, A. A new approach to improve cycle performance of rechargeable lithium-sulfur batteries by inserting a free-standing MWCNT interlayer. Chemical communications 2012, 48, 8817-8819. 241 ReferencesPDF Image | Accumulateur Lithium Soufre
PDF Search Title:
Accumulateur Lithium SoufreOriginal File Name Searched:
WALUS_2015_archivage.pdfDIY PDF Search: Google It | Yahoo | Bing
Sulfur Deposition on Carbon Nanofibers using Supercritical CO2 Sulfur Deposition on Carbon Nanofibers using Supercritical CO2. Gamma sulfur also known as mother of pearl sulfur and nacreous sulfur... More Info
CO2 Organic Rankine Cycle Experimenter Platform The supercritical CO2 phase change system is both a heat pump and organic rankine cycle which can be used for those purposes and as a supercritical extractor for advanced subcritical and supercritical extraction technology. Uses include producing nanoparticles, precious metal CO2 extraction, lithium battery recycling, and other applications... More Info
CONTACT TEL: 608-238-6001 Email: greg@infinityturbine.com | RSS | AMP |