[1] Ji X L, Nazar L F. Advances in Li-S batteries[J]. Journal of Materials Chemistry , 2010, 20(44): 9821-9826.[2] Wang C(王翀) , Chen J J(陈嘉嘉), She Q J(佘秋洁), et al. A high performance sulfur/carbon xerogel composite in lithium sulfur battery application[J]. Journal of Electrochemistry(电化学), 2010, 16(2): 168-171.[3] Zhang W H(张文华),Chen Y(陈瑶), Ai X P(艾新平), et al. Preparation and characterization of sulfur /mesoporous carbon composite cathodes[J]. Journal of Electrochemistry(电化学), 2010, 16(1): 16-19.[4] Xin S, Gu L, Zhao N H, et al. Smaller sulfur molecules promise better lithium-sulfur batteries[J]. Journal of the American Chemical Society, 2012, 134(45): 18510-18513.[5] Darwiche A, Marino C, Sougrati M T, et al. Better cycling performances of bulk Sb in Na-ion batteries compared to Li-ion systems: An unexpected electrochemical mechanism[J]. Journal of the American Chemical Society, 2012, 134(51): 20805-20811.[6] Wang L, Lu Y H, Liu J, et al. A superior low-cost cathode for a Na-ion battery[J]. Angewandte Chemie-International Edition, 2013, 52(7): 1964-1967.[7] Barpanda P, Ye T, Avdeev M, et al. A new polymorph of Na2MnP2O7 as a 3.6 V cathode material for sodium-ion batteries[J]. Journal of Materials Chemistry A, 2013, 1(13): 4194-4197.[8] Buchholz D, Moretti A, Kloepsch R, et al. Toward Na-ion batteries-synthesis and characterization of a novel high capacity Na ion intercalation material[J]. Chemistry of Materials, 2013, 25(2): 142-148.[9] Cheng F Y, Liang J, Tao Z L, et al. Functional materials for rechargeable batteries[J]. Advanced Materials, 2011, 23(15): 1695-1715.[10] Lu X C, Kirby B W, Xu W, et al. Advanced intermediate-temperature Na-S battery[J]. Energy & Environmental Science, 2013, 6(1): 299-306.[11] Park C W, Ahn J H, Ryu H S, et al. Room-temperature solid-state sodium/sulfur battery[J]. Electrochemical and Solid State Letters, 2006, 9(3): A123-A125.[12] Ryu H, Kim T, Kim K. Discharge reaction mechanism of room-temperature sodium-sulfur battery with tetra ethylene glycol dimethyl ether liquid electrolyte[J]. Journal of Power Sources, 2011, 196(11): 5185-5190.[13] Jun S, Joo S H, Ryoo R, et al. Synthesis of new, nanoporous carbon with hexagonally ordered mesostructure[J]. Journal of the American Chemical Society, 2000, 122(43):10712-10713.[14] Ji X L, Lee K T, Nazar L F. A highly ordered nanostructured carbon-sulphur cathode for lithium-sulphur batteries[J]. Nature Materials, 2009, 8(6): 500-506.[15] Zhang K, Zhao Q, Tao Z L, et al. Composite of sulfur impregnated in porous hollow carbon spheres as the cathode of Li–S batteries with high performance[J]. Nano Research, 2013, 6(1): 38-46.[16] Gao H Y, Hu Z, Zhang K. et al. Intergrown Li2FeSiO4·LiFePO4-C nanocomposites as high-capacity cathode materials for lithium-ion batteries[J]. Chemical Communications, 2013, 49(29): 3040-3042.[17] Cheng F Y, Wang H B, Zhu Z Q, et al. Porous LiMn2O4 nanorods with durable high-rate capability for rechargeable Li-ion batteries[J]. Energy & Environmental Science, 2011, 4(9): 3668-3675. |