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用于软包电池级全固态电池结构分析的X射线微计算机断层扫描技术

X‑ray Micro-Computed Tomography for Structural Analysis of All-Solid-State Battery at Pouch Cell Level.

作者信息

Huang Chen-Jui, Oh Jin An Sam, Vicencio Marta, Hu Tianchen, Yang Hedi, Burrow James N, Song Yen-Fang, Yin Gung-Chian, Shevchenko Pavel, Wiaderek Kamila M, Hwang Bing Joe, Meng Ying Shirley

机构信息

Pritzker School of Molecular Engineering, University of Chicago, Chicago, Illinois 60637, United States.

Advanced Photon Source, Argonne National Laboratory, Lemont, Illinois 60439, United States.

出版信息

ACS Energy Lett. 2025 Jun 26;10(7):3459-3470. doi: 10.1021/acsenergylett.5c00956. eCollection 2025 Jul 11.

Abstract

Characterizing the microstructure of all-solid-state batteries (ASSBs) during fabrication and operation is vital for their advancement, particularly as scaling to pouch cell levels introduces challenges in probing large-scale microstructural evolution. This work highlights the potential of synchrotron X-ray micro-computed tomography (sXCT) as a nondestructive, rapid (<30 min), and high-resolution technique for visualizing and quantifying key microstructural features, including overhang, porosity, contact loss, active surface area, and tortuosity, in all-solid-state pouch cells. The large field of view (up to millimeters) of sXCT enables detailed analysis at an industry-relevant scale, bridging the gap between laboratory research and commercial applications. Furthermore, integrating realistic sXCT-derived 3D models into multiphysics simulations could provide insights into chemo-mechanical degradation, particularly at the edges of the pouch cells, offering a pathway for designing robust, high-performance ASSBs. This perspective establishes sXCT as an indispensable tool for advancing both the understanding and the engineering of next-generation energy storage systems.

摘要

在全固态电池(ASSB)的制造和运行过程中对其微观结构进行表征对其发展至关重要,特别是在扩大到软包电池规模时,在探测大规模微观结构演变方面带来了挑战。这项工作突出了同步加速器X射线显微计算机断层扫描(sXCT)作为一种无损、快速(<30分钟)且高分辨率的技术,用于可视化和量化全固态软包电池中关键微观结构特征的潜力,这些特征包括悬垂、孔隙率、接触损失、活性表面积和曲折度。sXCT的大视场(可达毫米级)能够在与工业相关的规模上进行详细分析,弥合了实验室研究与商业应用之间的差距。此外,将基于sXCT的逼真三维模型集成到多物理场模拟中,可以深入了解化学机械降解,特别是在软包电池的边缘,为设计坚固、高性能的全固态电池提供了一条途径。这一观点确立了sXCT作为推进下一代储能系统的理解和工程设计不可或缺的工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/059a/12261322/7961bdc878fd/nz5c00956_0001.jpg

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