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In Situ Neutron Powder Diffraction Using Custom-made Lithium-ion Batteries
Published on: November 10, 2014
A spontaneously evolving multifunctional interphase enables durable cycling in solid-state lithium metal batteries
Haijie Lin1, Xiang Xie1, Fenghua Zheng2
1Engineering Research Center of the Ministry of Education for Advanced Battery Materials, School of Metallurgy and Environment, Central South University Changsha 410083 P.R. China liangxh@csu.edu.cn minglei666@csu.edu.cn ouxing@csu.edu.cn.
Abstract:
NASICON-type Li1.3Al0.3Ti1.7(PO4)3 (LATP) is a highly attractive solid electrolyte for solid-state lithium batteries, yet direct contact with Li metal readily induces Ti4+ reduction, electron leakage, heterogeneous interphase growth, and stress concentration, which collectively trigger interfacial degradation and dendrite penetration. Herein, a PVDF coating loaded with modified AlN is introduced at the LATP|Li interface to address the intrinsic interfacial instability of LATP|Li. Through PVDF defluorination, the coating forms an F-N bifunctional inorganic filler framework anchored within the PVDF matrix. Upon in situ reaction with Li metal, this framework yields an F-N bifunctional mosaic-structured interphase composed of coordinated LiF/Li x Al and Li3N/Li x Al heterogeneous microdomains, synergistically blocking electron leakage, facilitating Li+ transport, homogenizing interfacial charge distribution, regulating Li deposition, and accommodating mechanical stress. Consequently, the modified interface delivers durable cycling performance in LFP full cells, achieving 141.8 mA h g-1 after 800 cycles with 96.62% capacity retention at 0.5C. Notably, the evolved interphase integrates electrochemical and chemo-mechanical functions to enable stable cycling of NCM811 full cells, delivering an initial discharge capacity of 186.5 mA h g-1 at 0.5C with 82.14% capacity retention after 150 cycles. This work provides a design strategy for constructing durable cooperative interphases for solid-state batteries.
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