材料科学
聚吡咯
碲
阳极
阴极
化学工程
纳米技术
钠离子电池
溶解
复合材料
聚合物
聚合
电极
冶金
化学
工程类
法拉第效率
物理化学
作者
Mihyun Kim,Hyo-Sik Kim,Won Il Kim,Song Yeul Lee,Yong Il Park,Yun A. Shim,Tae‐Yeol Jeon,Jae-Yup Kim,Chi‐Yeong Ahn,Hyungwon Shim,Ji Eun Lee,Seung‐Ho Yu
标识
DOI:10.1021/acsami.4c03576
摘要
There is a growing demand for research and development of advanced energy storage devices with high energy density utilizing earth-abundant metal anodes such as sodium metal. Tellurium, a member of the chalcogen group, stands out as a promising cathode material due to its remarkable volumetric capacity, comparable to sulfur, and significantly high electrical conductivity. However, critical issues arise from soluble sodium polytellurides, leading to the shuttle effect. This phenomenon can result in the loss of active materials, self-discharge, and anode instability. Here, we introduce polypyrrole-coated tellurium nanotubes as the cathode materials, where polypyrrole plays a crucial role in preventing the dissolution of polytellurides, as confirmed through operando optical microscopy. The polypyrrole-coated tellurium nanotubes exhibited an outstanding rate performance and long cycle stability in sodium-tellurium batteries. These research findings are anticipated to bolster the viability of polypyrrole-coated tellurium nanotubes as promising cathode materials, making a substantial contribution to the commercialization of sodium-ion battery technology.
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