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解析用于富镍层状废正极材料直接回收的氧化还原介质辅助化学再嵌锂机制

Unraveling Redox Mediator-Assisted Chemical Relithiation Mechanism for Direct Recycling of Spent Ni-Rich Layered Cathode Materials.

作者信息

Kim Suji, Shin Ukseon, Yoon Hyun Ju, Yoon Soo-Ah, Song Jinju, Ma Jiyoung, Woo Jung-Je, Nam Kyung-Wan, Seo Dong-Hwa, Ryu Won-Hee

机构信息

Department of Chemical and Biological Engineering, Sookmyung Women's University, 100 Cheongpa-ro 47-gil, Yongsan-gu, Seoul, 04310, Republic of Korea.

Department of Materials Science and Engineering, Korea Advanced Institute of Science and Technology (KAIST), 291 Daehak-ro, Daejeon, 34141, Republic of Korea.

出版信息

Adv Sci (Weinh). 2025 Mar;12(11):e2417094. doi: 10.1002/advs.202417094. Epub 2025 Jan 22.

Abstract

The increasing demand for Li-ion batteries across various energy storage applications underscores the urgent need for environmentally friendly and efficient direct recycling strategies to address the issue of substantial cathode waste. Diverse reducing agents for Li supplements, such as quinone molecules, have been considered to homogenize the Li distribution in the cathode materials obtained after cycling; however, the detailed reaction mechanism is still unknown. Herein, the ideal electrochemical potential factor and reaction mechanism of the redox mediator 3,5-di-tert-butyl-o-benzoquinone (DTBQ) for the chemical relithiation of high-Ni-layered cathodes are elucidated. Here, 100% efficiency of DTBQ-assisted chemical relithiation is achieved by adjusting the direct immersion time of Li-deficient cathode electrodes. The reversible reaction features of the physical and chemical structures of both the regenerated cathodes and the DTBQ molecules are investigated using advanced characterization and density functional theory calculations. These findings emphasize the potential of redox-mediator-assisted chemical relithiation for realizing direct recycling processes and offer a facile and sustainable solution for battery recycling.

摘要

各种储能应用对锂离子电池的需求不断增加,凸显了迫切需要环保且高效的直接回收策略,以解决大量正极废料的问题。人们已考虑使用多种锂补充还原剂,如醌类分子,来使循环后获得的正极材料中的锂分布均匀化;然而,详细的反应机制仍然未知。在此,阐明了氧化还原介质3,5-二叔丁基邻苯醌(DTBQ)用于高镍层状正极化学再嵌锂的理想电化学势因素和反应机制。在此,通过调整缺锂正极电极的直接浸泡时间,实现了DTBQ辅助化学再嵌锂的100%效率。使用先进的表征和密度泛函理论计算研究了再生正极和DTBQ分子的物理和化学结构的可逆反应特征。这些发现强调了氧化还原介质辅助化学再嵌锂在实现直接回收过程方面的潜力,并为电池回收提供了一种简便且可持续的解决方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0dcb/11923935/49edcd164496/ADVS-12-2417094-g005.jpg

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