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Layer-Controlled Intermolecular Coupling and Many-Body Effects in C60_{60} Films

Published 28 Aug 2026 in cond-mat.mtrl-sci, cond-mat.mes-hall, and cond-mat.str-el | (2608.28583v1)

Abstract: Crystalline C<em>60<em>{60} is a molecular solid whose electronic properties emerge from the interplay of intermolecular hopping, electron correlations, and electron-vibration coupling. Unlike moireËŠ\rm\acute{e} van der Waals heterostructures, where interaction strength is commonly tuned by twist angle, molecular materials offer a complementary route in which layer number, molecular orientation, and substrate registry provide experimentally accessible control parameters. Here we present a systematic thickness-dependent angle-resolved photoemission study of C</em>60</em>{60} films, spanning the monolayer to the bulk limit. The HOMO-derived band exhibits a non-monotonic evolution: the intermediate-thickness film shows larger bandwidth, reduced effective mass, and pronounced gap-like and sub-band features. The experimental trends, together with Holstein-model simulations, point to strengthened effective intermolecular electronic coupling and enhanced electron-phonon-induced spectral renormalization in the intermediate-thickness regime. These results identify a dimensional crossover in C60_{60} films and establish layer number as an effective knob for engineering electronic structure and many-body interactions in molecular thin films.

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