Citty Brian, Lynd Jacob K, Gera Tarun, Varvelo Leonel, Raccah Doran I G B
Department of Chemistry, University of Texas at Austin, Austin, Texas 78712, USA.
Department of Chemistry, Southern Methodist University, PO Box 750314 Dallas, Texas 75205, USA.
J Chem Phys. 2024 Apr 14;160(14). doi: 10.1063/5.0197825.
The photoexcitation dynamics of molecular materials on the 10-100 nm length scale depend on complex interactions between electronic and vibrational degrees of freedom, rendering exact calculations difficult or intractable. The adaptive Hierarchy of Pure States (adHOPS) is a formally exact method that leverages the locality imposed by interactions between thermal environments and electronic excitations to achieve size-invariant scaling calculations for single-excitation processes in systems described by a Frenkel-Holstein Hamiltonian. Here, we extend adHOPS to account for arbitrary couplings between thermal environments and vertical excitation energies, enabling formally exact, size-invariant calculations that involve multiple excitations or states with shared thermal environments. In addition, we introduce a low-temperature correction and an effective integration of the noise to reduce the computational expense of including ultrafast vibrational relaxation in Hierarchy of Pure States (HOPS) simulations. We present these advances in the latest version of the open-source MesoHOPS library and use MesoHOPS to characterize charge separation at a one-dimensional organic heterojunction when both the electron and hole are mobile.
分子材料在10 - 100纳米长度尺度上的光激发动力学取决于电子和振动自由度之间的复杂相互作用,使得精确计算变得困难或难以处理。纯态自适应层级(adHOPS)是一种形式上精确的方法,它利用热环境与电子激发之间相互作用所施加的局域性,对由弗伦克尔 - 霍尔斯坦哈密顿量描述的系统中的单激发过程进行尺寸不变的缩放计算。在此,我们扩展了adHOPS,以考虑热环境与垂直激发能之间的任意耦合,从而实现涉及多个激发或具有共享热环境的态的形式上精确、尺寸不变的计算。此外,我们引入了低温校正和噪声的有效积分,以降低在纯态层级(HOPS)模拟中包含超快振动弛豫的计算成本。我们在最新版本的开源MesoHOPS库中展示了这些进展,并使用MesoHOPS来表征当电子和空穴都可移动时一维有机异质结处的电荷分离。