论文标题

在连续的圆形两极分化激光场中具有浮力相位空间跳跃的非绝热动力学

Non-adiabatic Dynamics in a Continuous Circularly Polarized Laser Field with Floquet Phase-space Surface Hopping

论文作者

Zhou, Zeyu, Wu, Yanze, Bian, Xuezhi, Subotnik, Joseph Eli

论文摘要

涉及连续循环光(CW CPL)的非绝热化学反应没有吸引到非极化/线性极化光中的动态。但是,包括圆形(与线性的)偏振光在内,使人们可以有效地引入一个复杂的时间依赖时间依赖性的哈密顿量,该途径通过引入浆果力为控制或探索提供了新的途径。在这里,我们研究了几种在存在时间依赖于时间依赖的复合物值的哈密顿量的情况下对这种非绝热动态建模的几种廉价的半经典方法,从直接的瞬时绝热瞬间绝热地表面跳跃(IA-FSSH)方法开始频率),并以异国情调的浮空间空间跳跃(F-PSSH)方法(电子状态依赖于位置,频率和动量)结束。使用一组与时间依赖的复合物值的汉密尔顿人的模型系统,我们表明,就核算浆果相位效应和提供准确性而言,Floquet相位空间绝热是基础的最佳选择。因此,F-PSSH算法为将来在强外部泵送圆极化下建模非绝热动态的阶段。

Non-adiabatic chemical reactions involving continuous circularly polarized light (cw CPL) have not attracted as much attention as dynamics in unpolarized/linearly polarized light. However, including circularly (in contrast to linearly) polarized light allows one to effectively introduce a complex-valued time-dependent Hamiltonian, which offers a new path for control or exploration through the introduction of Berry forces. Here, we investigate several inexpensive semiclassical approaches for modeling such nonadiabatic dynamics in the presence of a time-dependent complex-valued Hamiltonian, beginning with a straightforward instantaneous adiabatic fewest-switches surface hopping (IA-FSSH) approach (where the electronic states depend on position and time), continuing to a standard Floquet fewest switches surface hopping (F-FSSH) approach (where the electronic states depend on position and frequency), and ending with an exotic Floquet phase-space surface hopping (F-PSSH) approach (where the electronic states depend on position, frequency, and momentum). Using a set of model systems with time-dependent complex-valued Hamiltonians, we show that the Floquet phase-space adiabats are the optimal choice of basis as far as accounting for Berry phase effects and delivering accuracy. Thus, the F-PSSH algorithm sets the stage for modeling nonadiabatic dynamics under strong externally pumped circular polarization in the future.

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