Modification of the Optical Properties of Molecular Chains upon Coupling to Adatoms
Marvin M. M\"uller, Miriam Kosik, Marta Pelc, Garnett W. Bryant,, Andr\'es Ayuela, Carsten Rockstuhl, Karolina S{\l}owik

TL;DR
This paper introduces a tight-binding model to study how adatoms coupled to molecular chains affect their optical properties, emphasizing the importance of coupling strength and adatom position for nanoscale light-matter interactions.
Contribution
It presents a novel formalism that includes charge transfer and Coulomb interactions, providing insights into tunable optical properties of adatom-chain systems.
Findings
Coupling to adatoms significantly alters optical properties.
Adatom position critically influences the optical response.
Charge transfer effects are essential for accurate modeling.
Abstract
Adsorbed atoms (adatoms) coupled to the matrix of solid state host materials as impurities can significantly modify their properties. Especially in low-dimensional materials, such as one-dimensional organic polymer chains or quasi-one-dimensional graphene nanoribbons, intriguing manipulation of the optical properties, such as the absorption cross section, is possible. The most widely used approach to couple quantum emitters to optical antennas is based on the Purcell effect. This formalism, however, does not comprise charge transfer from the emitter to the antenna, but only spontaneous emission of the quantum emitter into the tailored photonic environment, that is evoked by the antenna. To capture such effects, we present a tight-binding formalism to couple an adatom to a finite Su-Schrieffer-Heeger chain, where the former is treated as a two-level system and the latter acts as an…
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