高性能全固态电池用分散良好的硅颗粒机械耐应力扩散依赖电极

IF 24.2 1区 材料科学 Q1 CHEMISTRY, PHYSICAL
Carbon Energy Pub Date : 2025-07-16 DOI:10.1002/cey2.70046
Ju Young Kim, Junhyeok Choi, Jaecheol Choi, Yunho Lee, Seok Hun Kang, Seokjae Hong, Hyungsub Kim, Yong Min Lee, Young-Gi Lee
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引用次数: 0

摘要

全固态电池(assb)由于其高能量密度和增强的安全性,是一种很有前途的下一代储能解决方案。为了实现这一目标,需要专门的电极设计来有效地增强固体组分之间的颗粒间锂离子传输。特别是,对于具有高比容量的活性材料,如硅,它们的体积膨胀和收缩必须仔细控制,以保持机械界面的稳定性,这对于锂离子在assb中的有效输运至关重要。在此,我们提出了一种机械耐应力的全固态石墨/硅电极设计,通过控制活性材料颗粒的形态来确保锂离子在界面处的稳定扩散。具有高表面积体积比的板型石墨用于最大化硅在电极内的分散。精心设计的电极可以适应硅的体积变化,确保稳定的容量保持在循环。此外,球形石墨通过在电极内提供有效的锂离子扩散途径,有助于提高倍率性能。因此,我们的电极结构的协同效应提供了平衡的电化学性能,为设计高性能全固态电极所必需的机械-电化学相互作用提供了实用的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Mechanical Stress-Tolerant Diffusion-Dependent Electrode With Well-Dispersed Silicon Particles for High-Performance All-Solid-State Batteries

Mechanical Stress-Tolerant Diffusion-Dependent Electrode With Well-Dispersed Silicon Particles for High-Performance All-Solid-State Batteries

All-solid-state batteries (ASSBs) are a promising next-generation energy storage solution due to their high energy density and enhanced safety. To achieve this, specialized electrode designs are required to efficiently enhance interparticle lithium-ion transport between solid components. In particular, for active materials with high specific capacity, such as silicon, their volume expansion and shrinkage must be carefully controlled to maintain mechanical interface stability, which is crucial for effective lithium-ion transport in ASSBs. Herein, we propose a mechanical stress-tolerant all-solid-state graphite/silicon electrode design to ensure stable lithium-ion diffusion at the interface through morphology control of active material particles. Plate-type graphite with a high surface-area-to-volume ratio is used to maximize the dispersion of silicon within the electrode. The carefully designed electrode can accommodate the volume changes of silicon, ensuring stable capacity retention over cycles. Additionally, spherical graphite is shown to contribute to improved rate performance by providing an efficient lithium-ion diffusion pathway within the electrode. Therefore, the synergistic effect of our electrode structure offers balanced electrochemical performance, providing practical insights into the mechano–electrochemical interactions essential for designing high-performance all-solid-state electrodes.

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来源期刊
Carbon Energy
Carbon Energy Multiple-
CiteScore
25.70
自引率
10.70%
发文量
116
审稿时长
4 weeks
期刊介绍: Carbon Energy is an international journal that focuses on cutting-edge energy technology involving carbon utilization and carbon emission control. It provides a platform for researchers to communicate their findings and critical opinions and aims to bring together the communities of advanced material and energy. The journal covers a broad range of energy technologies, including energy storage, photocatalysis, electrocatalysis, photoelectrocatalysis, and thermocatalysis. It covers all forms of energy, from conventional electric and thermal energy to those that catalyze chemical and biological transformations. Additionally, Carbon Energy promotes new technologies for controlling carbon emissions and the green production of carbon materials. The journal welcomes innovative interdisciplinary research with wide impact. It is indexed in various databases, including Advanced Technologies & Aerospace Collection/Database, Biological Science Collection/Database, CAS, DOAJ, Environmental Science Collection/Database, Web of Science and Technology Collection.
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