Highly Efficient Aligned Ion-Conducting Network and Interface Chemistries for Depolarized All-Solid-State Lithium Metal Batteries

电解质 阳极 阴极 材料科学 快离子导体 电化学 电化学窗口 金属锂 电极 锂(药物) 准固态 复合数 纳米技术 化学工程 集电器 复合材料 离子电导率 化学 物理化学 内分泌学 工程类 医学 色素敏化染料
作者
Yongbiao Mu,Shixiang Yu,Yuzhu Chen,Youqi Chu,Buke Wu,Qing Zhang,Binbin Guo,Lingfeng Zou,Zengqiang Zhang,Fenghua Yu,Meisheng Han,Meng Lin,Jinglei Yang,Jiaming Bai,Lin Zeng
出处
期刊:Nano-micro Letters [Springer Science+Business Media]
卷期号:16 (1): 86-86 被引量:45
标识
DOI:10.1007/s40820-023-01301-4
摘要

Abstract Improving the long-term cycling stability and energy density of all-solid-state lithium (Li)-metal batteries (ASSLMBs) at room temperature is a severe challenge because of the notorious solid–solid interfacial contact loss and sluggish ion transport. Solid electrolytes are generally studied as two-dimensional (2D) structures with planar interfaces, showing limited interfacial contact and further resulting in unstable Li/electrolyte and cathode/electrolyte interfaces. Herein, three-dimensional (3D) architecturally designed composite solid electrolytes are developed with independently controlled structural factors using 3D printing processing and post-curing treatment. Multiple-type electrolyte films with vertical-aligned micro-pillar (p-3DSE) and spiral (s-3DSE) structures are rationally designed and developed, which can be employed for both Li metal anode and cathode in terms of accelerating the Li + transport within electrodes and reinforcing the interfacial adhesion. The printed p-3DSE delivers robust long-term cycle life of up to 2600 cycles and a high critical current density of 1.92 mA cm −2 . The optimized electrolyte structure could lead to ASSLMBs with a superior full-cell areal capacity of 2.75 mAh cm −2 (LFP) and 3.92 mAh cm −2 (NCM811). This unique design provides enhancements for both anode and cathode electrodes, thereby alleviating interfacial degradation induced by dendrite growth and contact loss. The approach in this study opens a new design strategy for advanced composite solid polymer electrolytes in ASSLMBs operating under high rates/capacities and room temperature.
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