Department of Chemistry, Technische Universität München, D-85747 Garching, Germany.
Molecules. 2019 Jan 9;24(2):231. doi: 10.3390/molecules24020231.
We explore, by theoretical modeling and computer simulations, how nonadiabatic couplings of excited electronic states of a polyatomic chromophore manifest themselves in single-molecule signals on femtosecond timescales. The chromophore is modeled as a system with three electronic states (the ground state and two non-adiabatically coupled excited states) and a Condon-active vibrational mode which, in turn, is coupled to a harmonic oscillator heat bath. For this system, we simulate double-pump single-molecule signals with fluorescence detection for different system-field interaction strengths, from the weak-coupling regime to the strong-coupling regime. While the signals are determined by the coherence of the electronic density matrix in the weak-coupling regime, they are determined by the populations of the electronic density matrix in the strong-coupling regime. As a consequence, the signals in the strong coupling regime allow the monitoring of nonadiabatic electronic population dynamics and are robust with respect to temporal inhomogeneity of the optical gap, while signals in the weak-coupling regime are sensitive to fluctuations of the optical gap and do not contain information on the electronic population dynamics.
我们通过理论建模和计算机模拟,研究了多原子生色团的激发电子态的非绝热耦合如何在飞秒时间尺度的单分子信号中表现出来。该生色团被建模为具有三个电子态(基态和两个非绝热耦合的激发态)和一个 Condon 活性振动模式的系统,该振动模式又与一个谐振荡器热浴耦合。对于该系统,我们模拟了荧光检测的双泵单分子信号,系统场相互作用强度不同,从弱耦合区域到强耦合区域。虽然在弱耦合区域信号由电子密度矩阵的相干性决定,但在强耦合区域信号由电子密度矩阵的种群决定。因此,在强耦合区域的信号允许监测非绝热电子群体动力学,并且对光学间隙的时间不均匀性具有鲁棒性,而在弱耦合区域的信号对光学间隙的波动敏感,并且不包含关于电子群体动力学的信息。