Lee Jason W L, Köckert Hansjochen, Heathcote David, Popat Divya, Chapman Richard T, Karras Gabriel, Majchrzak Paulina, Springate Emma, Vallance Claire
Department of Chemistry, University of Oxford, Chemistry Research Laboratory, 12 Mansfield Rd, Oxford, OX1 3TA, UK.
Central Laser Facility, Science and Technology Facilities Council, Rutherford Appleton Laboratory, Harwell Campus, Didcot, OX11 0QX, UK.
Commun Chem. 2020 Jun 5;3(1):72. doi: 10.1038/s42004-020-0320-3.
Ultrafast laser pump-probe methods allow chemical reactions to be followed in real time, and have provided unprecedented insight into fundamental aspects of chemical reactivity. While evolution of the electronic structure of the system under study is evident from changes in the observed spectral signatures, information on rearrangement of the nuclear framework is generally obtained indirectly. Disentangling contributions to the signal arising from competing photochemical pathways can also be challenging. Here we introduce the new technique of three-dimensional covariance-map Coulomb explosion imaging, which has the potential to provide complete three-dimensional information on molecular structure and dynamics as they evolve in real time during a gas-phase chemical reaction. We present first proof-of-concept data from recent measurements on CFI. Our approach allows the contributions from competing fragmentation pathways to be isolated and characterised unambiguously, and is a promising route to enabling the recording of 'molecular movies' for a wide variety of gas-phase chemical processes.
超快激光泵浦-探测方法能够实时跟踪化学反应,为化学反应性的基本方面提供了前所未有的见解。虽然从观察到的光谱特征变化中可以明显看出所研究系统电子结构的演变,但关于核框架重排的信息通常是间接获得的。区分来自相互竞争的光化学途径对信号的贡献也可能具有挑战性。在这里,我们介绍了三维协方差映射库仑爆炸成像新技术,该技术有潜力在气相化学反应实时进行过程中,提供有关分子结构和动力学实时演变的完整三维信息。我们展示了最近对CFI测量的首个概念验证数据。我们的方法能够明确分离和表征来自相互竞争的碎片化途径的贡献,是为各种气相化学过程记录“分子电影”的一条有前景的途径。