Dai Henghan, Wang Lumin, Zhao Yue, Xue Jialu, Zhou Ruicong, Yu Chenyang, An Jianing, Zhou Jinyuan, Chen Qiang, Sun Gengzhi, Huang Wei
Institute of Advanced Materials (IAM), Nanjing Tech University (NanjingTech), Nanjing 211816, China.
Institute of Photonics Technology, Jinan University, Guangzhou 510632, China.
Research (Wash D C). 2021 Mar 2;2021:5130420. doi: 10.34133/2021/5130420. eCollection 2021.
Lithium-sulfur (Li-S) batteries as power supply systems possessing a theoretical energy density of as high as 2600 Wh kg are considered promising alternatives toward the currently used lithium-ion batteries (LIBs). However, the insulation characteristic and huge volume change of sulfur, the generation of dissolvable lithium polysulfides (LiPSs) during charge/discharge, and the uncontrollable dendrite formation of Li metal anodes render Li-S batteries serious cycling issues with rapid capacity decay. To address these challenges, extensive efforts are devoted to designing cathode/anode hosts and/or modifying separators by incorporating functional materials with the features of improved conductivity, lithiophilic, physical/chemical capture ability toward LiPSs, and/or efficient catalytic conversion of LiPSs. Among all candidates, molybdenum-based (Mo-based) materials are highly preferred for their tunable crystal structure, adjustable composition, variable valence of Mo centers, and strong interactions with soluble LiPSs. Herein, the latest advances in design and application of Mo-based materials for Li-S batteries are comprehensively reviewed, covering molybdenum oxides, molybdenum dichalcogenides, molybdenum nitrides, molybdenum carbides, molybdenum phosphides, and molybdenum metal. In the end, the existing challenges in this research field are elaborately discussed.
锂硫(Li-S)电池作为理论能量密度高达2600 Wh/kg的供电系统,被认为是当前使用的锂离子电池(LIB)的有前景的替代方案。然而,硫的绝缘特性和巨大的体积变化、充放电过程中可溶性多硫化锂(LiPSs)的生成以及锂金属阳极不可控的枝晶形成,使得Li-S电池存在严重的循环问题,容量迅速衰减。为应对这些挑战,人们致力于设计阴极/阳极主体和/或通过掺入具有改善导电性、亲锂性、对LiPSs的物理/化学捕获能力和/或LiPSs的高效催化转化等特性的功能材料来改性隔膜。在所有候选材料中,钼基材料因其可调的晶体结构、可调节的组成、Mo中心的可变价态以及与可溶性LiPSs的强相互作用而备受青睐。在此,全面综述了钼基材料在锂硫电池设计和应用方面的最新进展,涵盖了氧化钼、二硫化钼、氮化钼、碳化钼、磷化钼和金属钼。最后,详细讨论了该研究领域目前存在的挑战。