Integration Plasma Strategy Controlled Interfacial Chemistry Regulation Enabling Planar Lithium Growth in Solid‐State Lithium Metal Batteries

Author:

Sun Shiyi1,Wang Jianan1ORCID,Zong Shirong2,Ma Qianyue1,Li Huanxin3,Chen Xin1,Cui Xiangming1,Yang Kai4,Cai Qiong5,Zhao Yunlong6,Yan Wei1

Affiliation:

1. Department of Environmental Science and Engineering Xi'an Key Laboratory of Solid Waste Recycling and Resource Recovery State Key Laboratory of Multiphase Flow in Power Engineering School of Energy and Power Engineering Xi'an Jiaotong University 28 Xianning West Road Xi'an 710049 China

2. Center of Research & Development Yunnan Yuntianhua Co., LTD 1417 Dianchi Road Kunming 650228 China

3. Department of Chemistry Physical & Theoretical Chemistry Laboratory University of Oxford South Parks Road Oxford OX1 3QZ UK

4. Advanced Technology Institute University of Surrey Guildford Surrey GU2 7XH UK

5. School of Chemistry and Chemical Engineering Faculty of Engineering and Physical Sciences University of Surrey Guildford Surrey GU2 7XH UK

6. Dyson School of Design Engineering Imperial College London London SW7 2BX UK

Abstract

AbstractSolid‐state lithium metal batteries (SSLMBs) are identified as a highly promising candidate for next‐generation energy storage devices, yet they still face uncontrollable dendritic lithium (Li) growth originating from interfacial incompatibility. To address this issue, an “integration plasma (IP)” strategy for interlayer construction is proposed that integrates metal reduction and vapor deposition functions, featuring the ability to give a manipulable and quantifiable chemical regulation for controlling the surface concentration (Csurface) and the atomic ratio of the introduced metal element and electronegative element (ARE/M) on solid‐state electrolyte (SSE). This IP‐formed interlayer can in situ react with Li anode to synchronously produce metal‐Li alloy, Li salt and amorphous carbon, thus offering an “integrated function” to promote a spherical and hexagonal Li growth, preventing the dendrite propagation from SSE. When Csurface of metal elements and corresponding ARE/M is regulated as ≈1.13 nmol cm‐2 and ≈2.6, the IP‐modified SSE prolongs the lifespan of SSLMBs with LiNi0.8Co0.1Mn0.1O2 cathode to over 1000 cycles with a low‐capacity attenuation of 0.03% per cycle, highlighting the multiply functions of IP to accelerate the practical application of SSLMBs.

Funder

National Natural Science Foundation of China

China Postdoctoral Science Foundation

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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