A Universal Self‐Propagating Synthesis of Aluminum‐Based Oxyhalide Solid‐State Electrolytes

Author:

Zhang Simeng12,Xu Yang23,Wu Han1,Pang Tianlu4,Zhang Nian5,Zhao Changtai2,Yue Junyi12,Fu Jiamin6,Xia Shengjie1,Zhu Xiangzhen1,Wang Guanzhi12,Duan Hui6,Xiao Biwei2,Mei Tao3,Liang Jianwen2,Sun Xueliang1ORCID,Li Xiaona1ORCID

Affiliation:

1. Eastern Institute for Advanced Study Eastern Institute of Technology Ningbo Zhejiang 315200 P. R. China

2. Solid State Batteries Research Center GRINM (Guangdong) Institute for Advanced Materials and Technology Foshan Guangdong 528051 P. R. China

3. School of Materials Science and Engineering Hubei University Wuhan 430062 P. R. China

4. National Key Laboratory of Materials for Integrated Circuits Shanghai Institute of Microsystem and Information Technology Chinese Academy of Sciences Shanghai 200050. P. R. China

5. Shanghai Synchrotron Radiation Facility Shanghai Advanced Research Institute Chinese Academy of Sciences Shanghai 201204 P. R. China

6. Department of Mechanical and Materials Engineering University of Western Ontario London ON N6A 5B9 Canada

Abstract

AbstractInorganic solid‐state electrolytes (SSEs) play a vital role in high‐energy all‐solid‐state batteries (ASSBs). However, the current method of SSE preparation usually involves high‐energy mechanical ball milling and/or a high‐temperature annealing process, which is not suitable for practical application. Here, a facile strategy is developed to realize the scalable synthesis of cost‐effective aluminum‐based oxyhalide SSEs, which involves a self‐propagating method by the exothermic reaction of the raw materials. This strategy enables the synthesis of various aluminum‐based oxyhalide SSEs with tunable components and high ionic conductivities (over 10−3 S cm−1 at 25 °C) for different cations (Li+, Na+, Ag+). It is elucidated that the amorphous matrix, which mainly consists of various oxidized chloroaluminate species that provide numerous sites for smooth ion migration, is actually the key factor for the achieved high conductivities. Benefit from their easy synthesis, low cost, and low weight, the aluminum‐based oxyhalide SSEs synthesized by our approach could further promote practical application of high‐energy‐density ASSBs.

Funder

National Natural Science Foundation of China

China Postdoctoral Science Foundation

Publisher

Wiley

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