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Stabilization of Sn Anode through Structural Reconstruction of a Cu–Sn Intermetallic Coating Layer

Guanzhi WangDepartment of Materials Science and Engineering University of Central Florida Orlando FL 32826 USAMegan AubinAdvanced Materials Processing and Analysis Center University of Central Florida Orlando FL 32826 USAAbhishek MehtaAdvanced Materials Processing and Analysis Center University of Central Florida Orlando FL 32826 USAHuajun TianNanoScience Technology Center University of Central Florida Orlando FL 32826 USAJinfa ChangNanoScience Technology Center University of Central Florida Orlando FL 32826 USAAkihiro KushimaAdvanced Materials Processing and Analysis Center University of Central Florida Orlando FL 32826 USAYongho SohnAdvanced Materials Processing and Analysis Center University of Central Florida Orlando FL 32826 USAYang YangDepartment of Materials Science and Engineering University of Central Florida Orlando FL 32826 USA
2020en
ABI

Аннотация

Abstract The metallic tin (Sn) anode is a promising candidate for next‐generation lithium‐ion batteries (LIBs) due to its high theoretical capacity and electrical conductivity. However, Sn suffers from severe mechanical degradation caused by large volume changes during lithiation/delithiation, which leads to a rapid capacity decay for LIBs application. Herein, a Cu–Sn (e.g., Cu 3 Sn) intermetallic coating layer (ICL) is rationally designed to stabilize Sn through a structural reconstruction mechanism. The low activity of the Cu–Sn ICL against lithiation/delithiation enables the gradual separation of the metallic Cu phase from the Cu–Sn ICL, which provides a regulatable and appropriate distribution of Cu to buffer volume change of Sn anode. Concurrently, the homogeneous distribution of the separated Sn together with Cu promotes uniform lithiation/delithiation, mitigating the internal stress. In addition, the residual rigid Cu–Sn intermetallic shows terrific mechanical integrity that resists the plastic deformation during the lithiation/delithiation. As a result, the Sn anode enhanced by the Cu–Sn ICL shows a significant improvement in cycling stability with a dramatically reduced capacity decay rate of 0.03% per cycle for 1000 cycles. The structural reconstruction mechanism in this work shines a light on new materials and structural design that can stabilize high‐performance and high‐volume‐change electrodes for rechargeable batteries and beyond.

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