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电极降解机制促进废旧锂离子电池直接再生:综述

Degradation Mechanisms of Electrodes Promotes Direct Regeneration of Spent Li-Ion Batteries: A Review.

作者信息

Jia Kai, Yang Guorui, He Yujia, Cao Zhenjiang, Gao Juntao, Zhao Hongyang, Piao Zhihong, Wang Junxiong, Abdelkader Amr M, Liang Zheng, Kumar R Vasant, Zhou Guangmin, Ding Shujiang, Xi Kai

机构信息

Department of Applied Chemistry, School of Chemistry, Engineering Research Center of Energy Storage Materials and Devices, Ministry of Education, National Innovation Platform (Center) for Industry-Education Integration of Energy Storage Technology, State Key Laboratory for Electrical Insulation and Power Equipment, Xi'an Jiaotong University, Xi'an, 710049, China.

Tsinghua Shenzhen International Graduate School &Tsinghua-Berkeley Shenzhen Institute (TBSI), Tsinghua University, Shenzhen, 518055, China.

出版信息

Adv Mater. 2024 Jun;36(23):e2313273. doi: 10.1002/adma.202313273. Epub 2024 Apr 3.

Abstract

The rapid growth of electric vehicle use is expected to cause a significant environmental problem in the next few years due to the large number of spent lithium-ion batteries (LIBs). Recycling spent LIBs will not only alleviate the environmental problems but also address the challenge of limited natural resources shortages. While several hydro- and pyrometallurgical processes are developed for recycling different components of spent batteries, direct regeneration presents clear environmental, and economic advantages. The principle of the direct regeneration approach is restoring the electrochemical performance by healing the defective structure of the spent materials. Thus, the development of direct regeneration technology largely depends on the formation mechanism of defects in spent LIBs. This review systematically details the degradation mechanisms and types of defects found in diverse cathode materials, graphite anodes, and current collectors during the battery's lifecycle. Building on this understanding, principles and methodologies for directly rejuvenating materials within spent LIBs are outlined. Also the main challenges and solutions for the large-scale direct regeneration of spent LIBs are proposed. Furthermore, this review aims to pave the way for the direct regeneration of materials in discarded lithium-ion batteries by offering a theoretical foundation and practical guidance.

摘要

由于大量废旧锂离子电池(LIBs)的存在,预计未来几年电动汽车使用量的快速增长将引发重大环境问题。回收废旧LIBs不仅能缓解环境问题,还能应对自然资源短缺的挑战。虽然已经开发了几种湿法和火法冶金工艺来回收废旧电池的不同成分,但直接再生具有明显的环境和经济优势。直接再生方法的原理是通过修复废旧材料的缺陷结构来恢复其电化学性能。因此,直接再生技术的发展很大程度上取决于废旧LIBs中缺陷的形成机制。本综述系统地详细介绍了在电池生命周期中不同阴极材料、石墨阳极和集流体中发现的降解机制和缺陷类型。基于这一理解,概述了直接使废旧LIBs中的材料恢复活力的原理和方法。还提出了废旧LIBs大规模直接再生的主要挑战和解决方案。此外,本综述旨在通过提供理论基础和实践指导,为废弃锂离子电池中材料的直接再生铺平道路。

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