Enabling sustainable critical materials for battery storage through efficient recycling and improved design: A perspective

IF 3.3 Q3 ENERGY & FUELS
Darren H. S. Tan, Panpan Xu, Zheng Chen
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引用次数: 14

Abstract

A perspective on the current state of battery recycling and future improved designs to promote sustainable, safe, and economically viable battery recycling strategies for sustainable energy storage. Recent years have seen the rapid growth in lithium-ion battery (LIB) production to serve emerging markets in electric vehicles and grid storage. As large volumes of these batteries reach their end of life, the need for sustainable battery recycling and recovery of critical materials is a matter of utmost importance. Global reserves for critical LIB elements such as lithium, cobalt, and nickel will soon be outstripped by growing cumulative demands. Despite advances in conventional recycling strategies such as pyrometallurgy and hydrometallurgy, they still face limitations in high energy consumption, high greenhouse gas emissions, as well as limited profitability. While new direct recycling methods are promising, they also face obstacles such as the lack of proper battery labeling, logistical challenges of inefficient spent battery collection, and components separation. Here, we discuss the importance of recovering critical materials, and how battery designs can be improved from the cell to module level in order to facilitate recyclability. The economic and environmental implications of various recycling approaches are analyzed, along with policy suggestions to develop a dedicated battery recycling infrastructure. We also discuss promising battery recycling strategies and how these can be applied to existing and future new battery chemistries.
通过有效的回收和改进设计,实现电池存储的可持续关键材料:一个视角
对电池回收现状和未来改进设计的看法,以促进可持续,安全和经济上可行的电池回收策略,以实现可持续能源存储。近年来,锂离子电池(LIB)的生产迅速增长,以服务于电动汽车和电网存储的新兴市场。随着这些电池的大量使用寿命结束,对电池的可持续回收和关键材料的回收是一个至关重要的问题。锂、钴和镍等关键锂离子电池元素的全球储量将很快被不断增长的累积需求所超越。尽管传统的回收战略如火法冶金和湿法冶金取得了进展,但它们仍然面临高能耗、高温室气体排放以及有限的盈利能力的限制。虽然新的直接回收方法很有前途,但它们也面临着障碍,比如缺乏适当的电池标签,低效的废电池收集的后勤挑战,以及组件分离。在这里,我们讨论了回收关键材料的重要性,以及如何从电池到模块水平改进电池设计,以促进可回收性。分析了各种回收方法的经济和环境影响,并提出了发展专用电池回收基础设施的政策建议。我们还讨论了有前途的电池回收策略,以及如何将这些策略应用于现有和未来的新电池化学物质。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
MRS Energy & Sustainability
MRS Energy & Sustainability ENERGY & FUELS-
CiteScore
6.40
自引率
2.30%
发文量
36
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