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使用聚焦离子束-二次离子质谱平台对锂离子电池电极进行取出样品制备及多尺度相关研究。

Lift-Out Specimen Preparation and Multiscale Correlative Investigation of Li-Ion Battery Electrodes Using Focused Ion Beam-Secondary Ion Mass Spectrometry Platforms.

作者信息

Delfino Pablo Maria, Bofanova Mariia, De Vito Eric, Dupré Nicolas, Lamblin Guillaume, Porcher Willy, Wirtz Tom, Audinot Jean-Nicolas

机构信息

Advanced Instrumentation for Nano-Analytics (AINA), Luxembourg Institute of Science and Technology (LIST), L-4422 Belvaux, Luxembourg.

University of Luxembourg, L-4365 Esch-sur-Alzette, Luxembourg.

出版信息

ACS Appl Mater Interfaces. 2024 Oct 23;16(42):57141-57150. doi: 10.1021/acsami.4c12915. Epub 2024 Oct 9.

Abstract

Advanced characterization is paramount to understanding battery cycling and degradation in greater detail. Herein, we present a novel methodology of battery electrode analysis, employing focused ion beam (FIB) secondary-ion mass spectrometry platforms coupled with a specific lift-out specimen preparation, allowing us to optimize analysis and prevent air contamination. Correlative microscopy, combining electron microscopy and chemical imaging of a liquid electrolyte Li-ion battery electrode, is performed over the entire electrode thickness down to subparticle domains. We observed a distinctive remnant lithiation among interparticles of the anode at the discharge state. Furthermore, chemical mapping reveals the nanometric architecture of advanced composite active materials with a lateral resolution of 16 nm and the presence of a solid electrolyte interface on the particle boundaries. We highlight the methodological advantages of studying interfaces and the ability to conduct high-performance chemical and morphological correlative analyses of battery materials and comment on their potential use in other fields.

摘要

先进的表征对于更详细地了解电池循环和降解至关重要。在此,我们提出了一种新颖的电池电极分析方法,采用聚焦离子束(FIB)二次离子质谱平台,并结合特定的取出式样品制备方法,使我们能够优化分析并防止空气污染。通过相关显微镜技术,将电子显微镜与液体电解质锂离子电池电极的化学成像相结合,对整个电极厚度直至亚颗粒区域进行了分析。我们观察到在放电状态下阳极颗粒间存在明显的残余锂化现象。此外,化学映射揭示了具有16纳米横向分辨率的先进复合活性材料的纳米结构以及颗粒边界上固体电解质界面的存在。我们强调了研究界面的方法优势以及对电池材料进行高性能化学和形态相关分析的能力,并对其在其他领域的潜在应用进行了评论。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1f64/11503607/58468471f24d/am4c12915_0001.jpg

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