地质科学中LA-ICP-MS成像技术研究与应用进展

A Review on Research and Application Progress of LA-ICP-MS Imaging Technology in Geological Science

  • 摘要: 激光剥蚀电感耦合等离子体质谱(LA-ICP-MS)成像是近二十年来发展起来的微区元素分析技术,应用日益广泛。该技术突破了传统全岩分析与原位点分析无法反映元素微观分布差异的局限,能够精准呈现矿物中元素的空间分布特征,为揭示岩石成因、成矿过程等复杂地质过程提供关键的微观依据,已成为地质研究的重要手段。目前,该技术已实现1 ~ 10 µm空间分辨率和亚µg/g检出限,单次实验可同步获取40余种元素的空间分布信息;但是,在实际应用中仍面临诸多技术难点,包括仪器设备的信号传输与检测效率制约、数据校正的基体效应干扰、表面污染对分析结果的影响,以及检出限与数据不确定性等问题,同时数据处理的效率与精准度也成为技术推广的关键制约因素。本文介绍了 LA-ICP-MS成像技术的发展历程与核心体系,重点阐述高速高分辨率成像的仪器优化方向(激光剥蚀系统、ICP-MS系统及相关辅助策略),以及主流数据处理软件的功能特征与应用差异,梳理了实验参数优化方法与数据校正技术,并结合典型案例评述了该技术在矿床地质学、岩浆岩研究、地质年代学等地质学领域的应用成果与分析思路。仪器设备的迭代升级、实验参数的精细化调控、数据校正方法的创新完善,以及数据处理开源软件的功能拓展,是解决LA-ICP-MS成像技术问题、提升分析性能的核心方向;而该技术与扫描电镜(SEM)、透射电子显微镜(TEM)、同步辐射X射线荧光光谱(SR-XRF)等分析技术的融合,以及大数据分析方法的深度应用,能够充分发挥其微区元素分析的优势,挖掘更丰富的地质信息。未来LA-ICP-MS 成像技术将在矿床成矿机制研究、关键矿产资源勘查、岩浆演化过程解析等方面发挥更重要的作用,为地质科学研究提供更全面、精准的微观数据支撑。

     

    Abstract: Laser Ablation-Inductively coupled plasma-mass spectrometry (LA-ICP-MS) imaging is a micro-area element analysis technology developed in the past two decades, and its application has become increasingly widespread. Web of Science search shows that more than 970 relevant papers have been published in this field since 2003, and the number is increasing year by year, especially in the field of geoscience. The technology can accurately present the spatial distribution characteristics of elements in minerals, breaking through the limitations of traditional whole-rock analysis and in-situ spot analysis, which cannot reflect the micro-distribution differences of elements. Thereby, LA-ICP-MS can provide a key microscopic basis for revealing complex geological processes such as rock genesis and mineralization, and has become an important tool in geological research. Till now, LA-ICP-MS imaging has achieved a spatial resolution of 1–10 μm and a detection limit of sub-μg/g, and can simultaneously obtain spatial distribution information of more than 40 elements in one experiment. However, this technology still faces many technical difficulties in practical application, including the constraints of signal transmission and detection efficiency of instrument equipment, the interference of matrix effect in data correction, the impact of surface contamination on analysis results, and the detection limit and data uncertainty. Meanwhile, the efficiency and accuracy of data processing have also become key constraints for technology promotion. This paper systematically reviews the development history and core parameters of LA-ICP-MS imaging technology, focuses on the instrument optimization direction of high-speed and high-resolution imaging (LA system, ICP-MS system and related auxiliary strategies), the functional characteristics and application differences of mainstream data processing software, sorts out the experimental parameter optimization methods and data correction technologies, and summarizes the application achievements and analysis ideas of this technology in geological fields such as deposit geology, magmatic rock research and geochronology combined with typical cases. The study holds that the iterative upgrading of instrument equipment, the refined regulation of experimental parameters, the innovation and improvement of data correction methods, and the functional expansion of the domestic open-source software LIMS2.0 are the core directions to solve the existing problems of LA-ICP-MS imaging technology and improve the analysis performance. The integration of this technology with other analytical technologies such as SEM, TEM and SR-XRF, as well as the in-depth application of big data analysis methods, can give full play to its advantages in micro-area element analysis and explore more abundant geological information. In the future, LA-ICP-MS imaging technology will play a more important role in the research of ore mineralization, magmatic evolution process, etc., and provide more comprehensive and accurate microcosmic data support for geological scientific research.

     

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