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Incorporation of layered tin(Ⅳ) phosphate in graphene framework for high performance lithium-sulfur batteries
作者姓名:Haifeng Yuan  Na Zhang  Leiwu Tian  Lei Xu  Qinjun Shao  Syed Danish Ali Zaidi  Jianping Xiao  Jian Chen
作者单位:Advanced Rechargeable Battery Laboratory;State Key Laboratory of Catalysis;University of Chinese Academy of Sciences.Beijing 100049
基金项目:supported by the funding from the Strategy Priority Research Program of Chinese Academy of Science (Grant No. XDA17020404);the DICP&QIBEBT (DICP&QIBEBT UN201702);the R&D Projects in Key Areas of Guangdong Province (2019B090908001);Science and Technology Innovation Foundation of Dalian (2018J11CY020);the Defense Industrial Technology Development Program (JCKY2018130C107)。
摘    要:To anchor the polysulfide and enhance the conversion kinetics of polysulfide to disulfide/sulfide is critical for improving the performance of lithium-sulfur battery.For this purpose,the graphene-supported tin(Ⅳ) phosphate(Sn(HPO_4)_2·H_2 O,SnP) composites(SnP-G) are employed as the novel sulfur hosts in this work.When compared to the graphene-sulfur and carbon-sulfur composites,the SnP-G-sulfur composites exhibit much better cycling performance at 1.0 C over 800 cycles.Meanwhile,the pouch cell fabricated with the SnP-G-sulfur cathodes also exhibits excellent performance with an initial capacity of1266.6 mAh g-1(S) and capacity retention of 76.9% after 100 cycles at 0.1 C.The adsorption tests,density functional theory(DFT) calculations in combination with physical cha racterizations and electrochemical measurements provide insights into the mechanism of capture-accelerated conversion mechanism of polysulfide at the surface of SnP.DFT calculations indicate that the Li-O bond formed between Li atom(from Li_2 S_n,n=1,2,4,6,8) and O atom(from PO_3-OH in SnP) is the main reason for the strong interactions between Li_2 S_n and SnP.As a result,SnP can effectively restrain the shuttle effect and improving the cycling performance of Li-S cell.In addition,by employing the climbing-image nudged elastic band(ciNEB) methods,the energy barrier for lithium sulfide decomposition(charging reaction) on SnP is proved to decrease significantly compared to that on graphene.It can be concluded that SnP is an effective sulfur hosts acting as dual-functional accelerators for the conversion reactions of polysulfude to sulfide(discharging reaction) as well as polysulfide to sulfur(charging reaction).

关 键 词:Lithium-sulfur  battery  Tin(Ⅳ)phosphate  Dual-functional  accelerator  Sulfur  host  Density  functional  theory  calculations
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