阴极
化学
电解质
多硫化物
氧化还原
化学工程
限制
电池(电)
电化学
锂(药物)
聚合物
储能
电极
硫化物
聚苯胺
铝
能量密度
纳米技术
超级电容器
惰性
降级(电信)
腐蚀
能量转换
芯(光纤)
电化学电池
高能
可持续能源
作者
Youqi Zhang,Wenyi He,Hun Uk Kim,Xiaosheng Song,Yong Zhao,Myoung-Chan Kim,Yang-Kook Sun
摘要
Solid polymer electrolyte (SPE)-based lithium–sulfur (Li–S) batteries attract significant interest due to their high theoretical energy densities and enhanced safety profiles. However, the clogging of the cathode-SPE interface with ″dead″ lithium polysulfide (LiPS) is the core failure mechanism of the SPE-based Li–S battery. This induces a sluggish, irreversible electrochemical environment, hindering redox processes and limiting the practical implementation of high-energy-density solid-state Li–S batteries (SSLSBs). To address this problem, this study proposes the generation of a dynamic active medium (DAM) electrolyte system at the cathode interface. Based on the coordination effect between aluminum acetylacetonate and 1,3-dioxolane (DOL), this system is introduced between the cathode and in situ-polymerized polyDOL-based SPE, synergistically realizing three functions: (1) optimizing the electrode–electrolyte interfacial compatibility, (2) adsorbing and reactivating the LiPS accumulated at the interface, and (3) reducing the energy barriers of the S redox reactions and accelerating the sulfide conversion kinetics. This approach enables the SSLSB to reach a high energy density of 347 Wh kg –1 at a high S loading of 4.5 mg cm –2 . The pouch cell configuration maintains a capacity retention rate as high as 85.3% after 80 cycles. Moreover, this interfacial DAM strategy provides an innovative engineering concept to suppress the accumulation of LiPS in SSLSBs.
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