激光诱导紫外光谱(LIXS)用于指纹材料氧化。

IF 3.8 2区 化学 Q1 BIOCHEMICAL RESEARCH METHODS
Davide Bleiner, Sharath Rameshbabu, Janosch Von Ballmoos
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引用次数: 0

摘要

激光诱导XUV光谱(LIXS)是一种新兴的基于等离子体的微分析技术,可以进入激光诱导等离子体演化的早期,“背景未污染”(原始)阶段。在本研究中,通过利用辐射复合动力学,研究了LIXS不仅能分辨元素组成,还能分辨复杂材料的氧化态。利用空间滤波检测方案,跟踪了等离子体发射的演变,揭示了与电子重组到未占据的s或d原子轨道相关的特征光谱特征。后者保留了母体材料氧化状态的明显指纹。对LiF, Al和Ni的初步实验用于校准膨胀动力学,发射延迟和原子结构之间的关系。参考样品,包括具有明确化学计量的锂锰氧化物,被用来将LIXS光谱指纹与锰氧化水平相关联。结果表明,与热化LIBS等离子体的观测结果相反,LIXS激光等离子体不会消除材料的化学计量信息。相反,XUV区的复合特征直接反映了母材料的电子构型。这项工作介绍了LIXS作为一种快速,化学计量灵敏的氧化态映射的新途径,可立即应用于能源材料和电池组件的质量控制。该方法为氧化特异性等离子体光谱的发展奠定了基础,将激光烧蚀的分析能力远远扩展到元素分析之外。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fingerprinting materials oxidation using laser-induced XUV spectroscopy (LIXS).

Laser-induced XUV spectroscopy (LIXS) is an emerging plasma-based microanalytical technique that offers access to the early, "background-uncontaminated" (pristine) stages of laser-induced plasma evolution. In this study, the capability of LIXS to resolve not only the elemental composition but also the oxidation state of complex materials is investigated, i.e., by exploiting radiative recombination dynamics. Using a spatial-filtered detection scheme, the evolution of plasma emission was tracked, revealing characteristic spectral features associated with electron recombination into unoccupied s or d atomic orbitals. The latter retain a distinct fingerprint of the parent material's oxidation state. Preliminary experiments on LiF, Al, and Ni served to calibrate the relationship between expansion kinetics, emission time delay, and atomic structure. Reference samples, including lithium manganese oxides with well-defined stoichiometries, were used to correlate LIXS spectral fingerprints to manganese oxidation levels. The results indicate that, contrary to the observations for the thermalized LIBS plasma, the LIXS laser plasma does not erase information on the material's stoichiometry. Instead, the recombination features in the XUV region directly reflect the electronic configuration of the parent material. This work introduces LIXS as a novel route for rapid, stoichiometry-sensitive mapping of oxidation states, with immediate applications in the quality control of energy materials and battery components. The approach lays the foundation for the development of oxidation-specific plasma spectroscopy, extending the analytical power of laser ablation far beyond elemental analysis.

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来源期刊
CiteScore
8.00
自引率
4.70%
发文量
638
审稿时长
2.1 months
期刊介绍: Analytical and Bioanalytical Chemistry’s mission is the rapid publication of excellent and high-impact research articles on fundamental and applied topics of analytical and bioanalytical measurement science. Its scope is broad, and ranges from novel measurement platforms and their characterization to multidisciplinary approaches that effectively address important scientific problems. The Editors encourage submissions presenting innovative analytical research in concept, instrumentation, methods, and/or applications, including: mass spectrometry, spectroscopy, and electroanalysis; advanced separations; analytical strategies in “-omics” and imaging, bioanalysis, and sampling; miniaturized devices, medical diagnostics, sensors; analytical characterization of nano- and biomaterials; chemometrics and advanced data analysis.
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