Department of Chemistry, University of Oxford, Chemistry Research Laboratory, 12 Mansfield Road, Oxford OX1 3TA, U.K.
J Phys Chem A. 2021 Feb 11;125(5):1117-1133. doi: 10.1021/acs.jpca.0c10038. Epub 2021 Jan 21.
Over the past decade or so, the state-of-the-art in the field of chemical reaction dynamics has progressed from studies of few-atom systems to wide-ranging investigations into a variety of photoinduced and collision-induced processes in much larger molecules. Many of these studies are of direct relevance to a wide audience of chemists, spanning fields such as atmospheric chemistry, astrochemistry, synthetic chemistry, and chemical biology. Key to this work has been the technique of velocity-map imaging, which allows complete product scattering distributions to be recorded for the process of interest. Recent advances in camera technology have enabled the development of multimass velocity-map imaging, in which the scattering distributions of all reaction products can be recorded in a single measurement. In addition to the scattering distributions of individual reaction products, the data set now contains information on correlations between the scattering distributions of two or more fragments. These correlations can be revealed using the technique of statistical covariance, yielding an approach known as covariance-map imaging. This review will introduce the reader to covariance mapping and will describe various applications of the technique within the field of chemical dynamics. The underlying concepts will be illustrated through a series of simple simulations, before moving on to describe a number of recent experimental studies in which covariance mapping has been used to obtain mechanistic insight and information on molecular structure on the femtosecond time scale.
在过去的十年左右,化学反应动力学领域的最新技术已经从少数原子系统的研究发展到对更大分子的各种光诱导和碰撞诱导过程的广泛研究。这些研究中的许多都与化学家的广泛受众直接相关,涵盖了大气化学、天体化学、合成化学和化学生物学等领域。这项工作的关键是速度映射成像技术,它可以记录感兴趣过程的完整产物散射分布。相机技术的最新进展使多质量速度映射成像得以发展,其中可以在单次测量中记录所有反应产物的散射分布。除了单个反应产物的散射分布外,数据集现在还包含两个或更多碎片散射分布之间相关性的信息。这些相关性可以使用统计协方差技术来揭示,从而产生一种称为协方差映射成像的方法。本综述将向读者介绍协方差映射,并描述该技术在化学动力学领域的各种应用。基本概念将通过一系列简单的模拟来说明,然后再描述一些最近的实验研究,其中协方差映射已被用于在飞秒时间尺度上获得关于分子结构的机制见解和信息。