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寄生结构缺陷损害了无钴单晶阴极的可持续性。

Parasitic structure defect blights sustainability of cobalt-free single crystalline cathodes.

作者信息

Yu Lei, Dai Alvin, Zhou Tao, Huang Weiyuan, Wang Jing, Li Tianyi, He Xinyou, Ma Lu, Xiao Xianghui, Ge Mingyuan, Amine Rachid, Ehrlich Steven N, Ou Xing, Wen Jianguo, Liu Tongchao, Amine Khalil

机构信息

Center for Nanoscale Materials, Argonne National Laboratory, Lemont, IL, USA.

Chemical Sciences and Engineering Division, Argonne National Laboratory, Lemont, IL, USA.

出版信息

Nat Commun. 2025 Jan 6;16(1):434. doi: 10.1038/s41467-024-55235-5.

Abstract

Recent efforts to reduce battery costs and enhance sustainability have focused on eliminating Cobalt (Co) from cathode materials. While Co-free designs have shown notable success in polycrystalline cathodes, their impact on single crystalline (SC) cathodes remains less understood due to the significantly extended lithium diffusion pathways and the higher-temperature synthesis involved. Here, we reveal that removing Co from SC cathodes is structurally and electrochemically unfavorable, exhibiting unusual voltage fade behavior. Using multiscale diffraction and imaging techniques, we identify lithium-rich nanodomains (LRNDs) as a heterogeneous phase within the layered structure of Co-free SC cathodes. These LRNDs act as critical tipping points, inducing significant chemo-mechanical lattice strain and irreversible structural degradation, which exacerbates the voltage and capacity loss in electrochemical performance. Our findings highlight the considerable challenges of developing Co-free SC cathodes compared to polycrystalline ones and emphasize the need for new strategies to balance the interplay between cost, sustainability, and performance.

摘要

最近为降低电池成本和提高可持续性所做的努力主要集中在从阴极材料中去除钴(Co)。虽然无钴设计在多晶阴极方面已取得显著成功,但由于锂扩散路径显著延长以及涉及更高温度的合成过程,它们对单晶(SC)阴极的影响仍不太清楚。在此,我们揭示从SC阴极中去除钴在结构和电化学方面是不利的,表现出异常的电压衰减行为。使用多尺度衍射和成像技术,我们将富锂纳米域(LRNDs)识别为无钴SC阴极层状结构中的一种异质相。这些LRNDs充当关键的临界点,引发显著的化学机械晶格应变和不可逆的结构降解,这加剧了电化学性能中的电压和容量损失。我们的研究结果凸显了与多晶阴极相比,开发无钴SC阴极面临的巨大挑战,并强调需要新策略来平衡成本、可持续性和性能之间的相互作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/491e/11704202/afa6bfa98233/41467_2024_55235_Fig1_HTML.jpg

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