Damage‐Tolerant and Self‐Repairing Web‐Like Borate Type Binder Enable Stable Operation of Efficient Si‐Based Anodes

Author:

Wu Zhuoying1ORCID,Ma Yongqun1,Li Siying1,Que Liming2,Chen Hongbo2,Hao Fei3,Tao Xiaole4,Xing Hao4,Ye Jialin1,Qian Dan1,Ling Min1ORCID,Zhu Weiwei5,Liang Chengdu1

Affiliation:

1. College of Chemical and Biological Engineering Zhejiang University Hangzhou 310027 China

2. Zhejiang Fangyuan Test Group Co., Ltd Hangzhou 310063 China

3. National Institute of Clean‐and‐Low‐Carbon Energy Beijing 102211 China

4. Hangzhou Zhijiang Silicone Chemicals Co., Ltd Hangzhou 311203 China

5. Zhejiang Research Institute of Chemical Industry No. 387 Tianmushan Road Hangzhou 310000 China

Abstract

AbstractNovel binder designs are shown to be fruitful in improving the electrochemical performance of silicon (Si)‐based anodes. However, issues with mechanical damage from dramatic volume change and poor lithium‐ion (Li+) diffusion kinetics in Si‐based materials still need to be addressed. Herein, an aqueous self‐repairing borate‐type binder (SBG) with a web‐like architecture and high ionic conductivity is designed for Si and SiO electrodes. The 3D web‐like architecture of the SBG binder enables uniform stress distribution, while its self‐repairing ability promotes effective stress dissipation and mechanical damage repair, thereby enhancing the damage tolerance of the electrode. The tetracoordinate boron ions () in the SBG binder boosts the Li transportation kinetics of Si‐based electrodes. Based on dynamic covalent and ionic conductive boronic ester bonds, the diverse requirements of the binder, including uniform stress distribution, self‐repairing ability, and high ionic conductivity, can be met by simple components. Consequently, the proposed straightforward multifunction design strategy for binders based on dynamic boron chemistry provides valuable insights into fabricating high‐performance Si‐based anodes.

Funder

Fundamental Research Funds for the Central Universities

National Natural Science Foundation of China

Publisher

Wiley

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