Freie Universität Berlin, Fachbereich Physik, Arnimallee 14, 14195 Berlin, Germany.
Chemphyschem. 2013 May 10;14(7):1377-86. doi: 10.1002/cphc.201300053. Epub 2013 Apr 15.
We wish to present the application of our field-induced surface-hopping (FISH) method to simulate nonlinear absorption dynamics induced by strong nonresonant laser fields. We provide a systematic comparison of the FISH approach with exact quantum dynamics simulations on a multistate model system and demonstrate that FISH allows for accurate simulations of nonlinear excitation processes including multiphoton electronic transitions. In particular, two different approaches for simulating two-photon transitions are compared. The first approach is essentially exact and involves the solution of the time-dependent Schrödinger equation in an extended manifold of excited states, while in the second one only transiently populated nonessential states are replaced by an effective quadratic coupling term, and dynamics is performed in a considerably smaller manifold of states. We illustrate the applicability of our method to complex molecular systems by simulating the linear and nonlinear laser-driven dynamics in zinc (Zn) porphyrin in the gas phase and in water. For this purpose, the FISH approach is connected with the quantum mechanical-molecular mechanical approach (QM/MM) which is generally applicable to large classes of complex systems. Our findings that multiphoton absorption and dynamics increase the population of higher excited states of Zn porphyrin in the nonlinear regime, in particular in solution, provides a means for manipulating excited-state properties, such as transient absorption dynamics and electronic relaxation.
我们希望展示我们的场诱导跃迁(FISH)方法在模拟强非共振激光场诱导的非线性吸收动力学中的应用。我们在多态模型系统上对 FISH 方法与精确量子动力学模拟进行了系统比较,并证明 FISH 允许对包括多光子电子跃迁在内的非线性激发过程进行准确模拟。特别地,我们比较了两种不同的模拟双光子跃迁的方法。第一种方法本质上是精确的,涉及在扩展的激发态多重态中求解含时薛定谔方程,而在第二种方法中,仅用有效二次耦合项代替瞬态占据的非必需态,并且在状态的小得多的多重态中进行动力学。我们通过模拟气相和水中锌卟啉的线性和非线性激光驱动动力学,说明了我们的方法在复杂分子系统中的适用性。为此,FISH 方法与量子力学-分子力学方法(QM/MM)相结合,该方法通常适用于许多复杂系统。我们的发现表明,多光子吸收和动力学增加了非线性条件下锌卟啉的更高激发态的布居数,特别是在溶液中,为操纵激发态性质,如瞬态吸收动力学和电子弛豫提供了一种手段。