Polaron States in Fullerene Adducts Modeled by Coarse-Grained Molecular Dynamics and Tight Binding
Author(s) -
Beth Rice,
Anne A. Y. Guilbert,
Jarvist M. Frost,
Jenny Nelson
Publication year - 2018
Publication title -
the journal of physical chemistry letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.563
H-Index - 203
ISSN - 1948-7185
DOI - 10.1021/acs.jpclett.8b02320
Subject(s) - polaron , fullerene , chemical physics , hamiltonian (control theory) , molecule , phonon , materials science , charge (physics) , tight binding , electron , computational chemistry , molecular physics , condensed matter physics , chemistry , electronic structure , physics , quantum mechanics , mathematical optimization , mathematics
Strong electron-phonon coupling leads to polaron localization in molecular semiconductor materials and influences charge transport, but it is expensive to calculate atomistically. Here, we propose a simple and efficient model to determine the energy and spatial extent of polaron states within a coarse-grained representation of a disordered molecular film. We calculate the electronic structure of the molecular assembly using a tight-binding Hamiltonian and determine the polaron state self-consistently by perturbing the site energies by the dielectric response of the surrounding medium to the charge. When applied to fullerene derivatives, the method shows that polarons extend over multiple molecules in C60 but localize on single molecules in higher adducts of phenyl-C61-butyric-acid-methyl-ester (PCBM) because of packing disorder and the polar side chains. In PCBM, polarons localize on single molecules only when energetic disorder is included or when the fullerene is dispersed in a blend. The method helps to establish the conditions under which a hopping transport model is justified.
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