材料科学
电解质
纳米复合材料
丁二腈
高岭石
阳极
剥脱关节
电化学
化学工程
热稳定性
纳米技术
电极
冶金
化学
石墨烯
物理化学
工程类
作者
Cory M. Thomas,Davy Zeng,Hsien Cheng Huang,Thang Pham,Carlos G. Torres‐Castanedo,Michael J. Bedzyk,Vinayak P. Dravid,Mark C. Hersam
标识
DOI:10.1021/acsami.4c03997
摘要
Lithium-ion batteries are the leading energy storage technology for portable electronics and vehicle electrification. However, demands for enhanced energy density, safety, and scalability necessitate solid-state alternatives to traditional liquid electrolytes. Moreover, the rapidly increasing utilization of lithium-ion batteries further requires that next-generation electrolytes are derived from earth-abundant raw materials in order to minimize supply chain and environmental concerns. Toward these ends, clay-based nanocomposite electrolytes hold significant promise since they utilize earth-abundant materials that possess superlative mechanical, thermal, and electrochemical stability, which suggests their compatibility with energy-dense lithium metal anodes. Despite these advantages, nanocomposite electrolytes rarely employ kaolinite, the most abundant variety of clay, due to strong interlayer interactions that have historically precluded efficient exfoliation of kaolinite. Overcoming this limitation, here we demonstrate a scalable liquid-phase exfoliation process that produces kaolinite nanoplatelets (KNPs) with high gravimetric surface area, thus enabling the formation of mechanically robust nanocomposites. In particular, KNPs are combined with a succinonitrile (SN) liquid electrolyte to form a nanocomposite gel electrolyte with high room-temperature ionic conductivity (1 mS cm
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