arXiv:2312.14914·v2·cond-mat.mtrl-sci
First-principle quantum Monte-Carlo study of charge carrier mobility in organic molecular semiconductors
Johann Ostmeyer · Tahereh Nematiaram · Alessandro Troisi · Pavel Buividovich
Abstract
We present a first-principle numerical study of charge transport in a realistic two-dimensional tight-binding model of organic molecular semiconductors. We use the Hybrid Monte Carlo (HMC) algorithm to simulate the full quantum dynamics of phonons and either a single or multiple charge carriers without any tunable parameters. We introduce a number of algorithmic improvements, including efficient Metropolis updates for phonon fields based on analytic insights, which lead to negligible autocorrelation times and allow to reach sub-permille precisions at small computational cost of CPU-hour. Our simulations produce charge mobility estimates that are in good agreement with experiment and that also justify the phenomenological Transient Localisation approach.
Comments: 6 + 15 pages, 10 figures; v2: published version