材料科学
金属锂
导电体
电极
锂(药物)
胶粘剂
能量密度
金属
复合材料
接口(物质)
比例(比率)
纳米技术
工程物理
冶金
电解质
工程类
内分泌学
物理化学
物理
化学
毛细管作用
医学
量子力学
图层(电子)
毛细管数
作者
Dongyoon Kang,Minseok Jeong,Suhwan Kim,Myung-Geun Song,Cyril Bubu Dzakpasu,Seung K. Kim,Jaejin Lim,Sewon Eom,Seonghyeon Jung,Jieun Jang,Seungyun Jo,Heeji Jeon,Hyobin Lee,Seungyeop Choi,Taejin Jo,Hochun Lee,Du Yeol Ryu,Jeonghun Kim,Yong Min Lee
标识
DOI:10.1002/aenm.202405780
摘要
Abstract To address the limitations in thickness and width of lithium (Li) metal electrodes produced through traditional extrusion and pressing processes, a slurry‐based coating method utilizing Li metal powder (LMP) is investigated, enabling the fabrication of ultra‐thin and broad‐width Li electrodes by simply tuning the coating conditions. Despite these advancements, LMP electrodes face critical challenges, including delamination of the LMP composite layer from the Cu current collector (CC) due to electrolyte infiltration at the interface and degradation of interfacial connectivity during charging/discharging cycles. To mitigate these issues, an adhesive‐conductive polymer (AC‐polymer) interlayer composed of poly(3,4‐ethylenedioxythiophene) (PEDOT) and poly(styrene sulfonate ‐co‐ acrylic acid) (P(SS‐ co ‐AA) is introduced between the LMP composite layer and the Cu CC to improve interfacial stability. The incorporation of the AC‐polymer interlayer significantly reduced the Li stripping overpotential from 89.8 to 35.8 mV (a 60% decrease) and enhanced cycling stability, achieving 91% capacity retention at a 4 mA cm −2 discharging rate after 150 cycles, even in a carbonate‐based electrolyte. The successful fabrication of a 300 mm‐wide and 20 µm‐thick slurry‐coated AC‐LMP electrode represents a notable advancement in the development of Li metal batteries.
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