论文标题
时间分辨的手性X射线光电子光谱具有瞬时增强的原子选择性:电子激发的Fenchone映体的自由电子激光研究
Time-resolved chiral X-Ray photoelectron spectroscopy with transiently enhanced atomic site-selectivity: a Free Electron Laser investigation of electronically excited fenchone enantiomers
论文作者
论文摘要
手性分子本质上是普遍的,在生物化学过程和生命本身的起源中起着基本作用。手性分子中动力学的观察对于理解和控制光激发状态的手性活性至关重要。用于研究光激发手性系统的最有希望的技术之一是时间分辨的光电子圆形二色性(TR-PECD),它为振动和几何分子结构以及电子结构以及对女性的时光量表提供了强烈而敏感的探针。然而,在电子散射在分子中的电子中印刷的PECD效应的非本地特征使TR-PECD实验的解释具有挑战性。在这方面,已知核心电位允许对光电光谱的位点和化学敏感性。在这里,我们证明了利用核心水平光发射的TR-PECD可以探测手性电子结构及其宽松动力学,其原子位点灵敏度。紫外线泵送到3S rydberg状态后,使用圆形极化的软X射线光脉冲探测Fenchone对映体(C 10 H 16 O)。 C 1S结合能量转移是由该3S价电子密度的重新分布引起的,这使我们能够测量瞬时PECD手性反应,并且与基地态分子相比,C-Otom位点选择性增强。这些结果代表了关于光激发性手性分子的电子结构的第一个化学特异性和特定于对映体敏感的观察结果,并为通过核心光发射探测的手性FEM化学铺平了道路。
Chiral molecules are widespread in nature, playing a fundamental role in bio-chemical processes and in the origin of life itself. The observation of dynamics in chiral molecules is crucial for the understanding and control of the chiral activity of photo-excited states. One of the most promising techniques for the study of photo-excited chiral systems is time-resolved photoelectron circular dichroism (TR-PECD), which offers an intense and sensitive probe for vibronic and geometric molecular structure as well as electronic structures, and their evolution on a femtosecond timescale. However, the non-local character of the PECD effect, which is imprinted during the electron scattering off the molecule, makes the interpretation of TR-PECD experiments challenging. In this respect, core-photoionization is known to allow site- and chemical-sensitivity to photelectron spectroscopy. Here we demonstrate that TR-PECD utilising core-level photoemission enables probing the chiral electronic structure and its relaxation dynamics with atomic site sensitivity. Following UV pumped excitation to a 3s Rydberg state, fenchone enantiomers (C 10 H 16 O) were probed on a femtosecond scale using circularly polarized soft X-ray light pulses provided by the free-electron laser FERMI. C 1s binding energy shifts caused by the redistribution of valence electron density in this 3s-valence-Rydberg excitation allowed us to measure transient PECD chiral responses with an enhanced C-atom site-selectivity compared to that achievable in the ground state molecule. These results represent the first chemical-specific and site-specific, enantio-sensitive observations on the electronic structure of a photo-excited chiral molecule and pave the way towards chiral femtochemistry probed by core-level photoemission.