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Frontier orbitals control dynamical disorder in molecular semiconductors

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arxiv 2412.06030 v1 pith:HU27PGBJ submitted 2024-12-08 cond-mat.mtrl-sci cond-mat.dis-nn

classification cond-mat.mtrl-scicond-mat.dis-nn
keywords disorderdynamicalmolecularsemiconductorsfrontierintegralpicenetransfer
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abstract

Charge transport in organic semiconductors is limited by dynamical disorder. Design rules for new high-mobility materials have therefore focused on limiting its two foundations: structural fluctuations and the transfer integral gradient. However, it has remained unclear how these goals should be translated into molecular structures. Here we show that a specific shape of the frontier orbital, with a lack of nodes along the long molecular axis, reduces the transfer integral gradient and therefore the dynamical disorder. We investigated single crystals of the prototypical molecular semiconductors pentacene and picene by angle-resolved photoemission spectroscopy and dynamical disorder calculations. We found that picene exhibits a remarkably low dynamical disorder. By separating in- and out-of-plane components of dynamical disorder, we identify the reason as a reduced out-of-plane disorder from a small transfer integral derivative. Our results demonstrate that molecules with an armchair $\pi$-electron topology and same-phase frontier orbitals like picene are promising molecular building blocks for the next generation of organic semiconductors.

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  1. First-Principles Origins of Charge Transport in Molecular Semiconductors

    cond-mat.mtrl-sci 2026-07 accept novelty 8.0 of 10

    Ab initio electron–phonon Hamiltonians plus nonperturbative Green–Kubo dynamics predict molecular-crystal transport and attribute DNTT localization to correlated acoustic on-site disorder, not independent hopping fluc...

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