Excitons in quasi-one dimensional organics: Strong correlation approximation
Z. G. Yu, A. Saxena, and A. R. Bishop

TL;DR
This paper develops an exciton theory for quasi-one-dimensional organic materials using a strong correlation approximation, analyzing exciton properties, impurity effects, interchain interactions, and charge transfer phenomena.
Contribution
It introduces an analytical exciton model incorporating strong correlations, impurity effects, and interchain coupling, advancing understanding of exciton behavior in organic quasi-one-dimensional systems.
Findings
Analytical exciton energy and wavefunction derived.
Impurity strength influences exciton localization and dissociation.
Interchain coupling leads to interchain exciton states.
Abstract
An exciton theory for quasi-one dimensional organic materials is developed in the framework of the Su-Schrieffer-Heeger Hamiltonian augmented by short range extended Hubbard interactions. Within a strong electron-electron correlation approximation, the exciton properties are extensively studied. Using scattering theory, we analytically obtain the exciton energy and wavefunction and derive a criterion for the existence of a exciton. We also systematically investigate the effect of impurities on the coherent motion of an exciton. The coherence is measured by a suitably defined electron-hole correlation function. It is shown that, for impurities with an on-site potential, a crossover behavior will occur if the impurity strength is comparable to the bandwidth of the exciton, corresponding to exciton localization. For a charged impurity with a spatially extended potential, in addition…
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