Bennett Kochise, Kowalewski Markus, Mukamel Shaul
Chemistry Department, University of California , Irvine, California 92697-2025, United States.
J Chem Theory Comput. 2016 Feb 9;12(2):740-52. doi: 10.1021/acs.jctc.5b00824. Epub 2016 Jan 8.
We present a hierarchy of Fermi golden rules (FGRs) that incorporate strongly coupled electronic/nuclear dynamics in time-resolved photoelectron spectroscopy (TRPES) signals at different levels of theory. Expansion in the joint electronic and nuclear eigenbasis yields the numerically most challenging exact FGR (eFGR). The quasistatic Fermi Golden Rule (qsFGR) neglects nuclear motion during the photoionization process but takes into account electronic coherences as well as populations initially present in the pumped matter as well as those generated internally by coupling between electronic surfaces. The standard semiclassical Fermi Golden Rule (scFGR) neglects the electronic coherences and the nuclear kinetic energy during the ionizing pulse altogether, yielding the classical Condon approximation. The coherence contributions depend on the phase-profile of the ionizing field, allowing coherent control of TRPES signals. The photoelectron spectrum from model systems is simulated using these three levels of theory. The eFGR and the qsFGR show temporal oscillations originating from the electronic or vibrational coherences generated as the nuclear wave packet traverses a conical intersection. These oscillations, which are missed by the scFGR, directly reveal the time-evolving splitting between electronic states of the neutral molecule in the curve-crossing regime.
我们提出了费米黄金规则(FGR)层次结构,该结构在不同理论水平下将强耦合电子/核动力学纳入时间分辨光电子能谱(TRPES)信号中。在联合电子和核本征基下展开可得到数值上最具挑战性的精确费米黄金规则(eFGR)。准静态费米黄金规则(qsFGR)在光电离过程中忽略核运动,但考虑了电子相干性以及泵浦物质中最初存在的布居数,以及通过电子表面之间的耦合在内部产生的布居数。标准半经典费米黄金规则(scFGR)在电离脉冲期间完全忽略电子相干性和核动能,得到经典的康登近似。相干贡献取决于电离场的相位分布,从而实现对TRPES信号的相干控制。使用这三种理论水平对模型系统的光电子能谱进行了模拟。eFGR和qsFGR显示出时间振荡,这些振荡源于核波包穿过锥形交叉点时产生的电子或振动相干性。scFGR遗漏了这些振荡,它们直接揭示了曲线交叉区域中性分子电子态之间随时间变化的分裂。