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Optical properties of one-dimensional exciton systems: Beyond the Heitler-London approximation
Author(s) -
Lisette D. Bakalis,
Jasper Knoester
Publication year - 1997
Publication title -
the journal of chemical physics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.071
H-Index - 357
eISSN - 1089-7690
pISSN - 0021-9606
DOI - 10.1063/1.473676
Subject(s) - physics , exciton , hamiltonian (control theory) , oscillator strength , boson , ground state , quantum mechanics , delocalized electron , dipole , quantum electrodynamics , atomic physics , condensed matter physics , spectral line , mathematical optimization , mathematics
We study the properties of one-dimensional exciton systems in which the commonly made Heitler-London approximation (HLA) is relaxed. The nonresonant interaction terms which then exist, mix the multi-exciton bands of the HLA. Our approach is based on the exact diagonalization of the Hamiltonian, which is possible using the Jordan-Wigner and Bogoliubov transformations. Exact expressions for transition dipoles between multi-particle states are given. Results of our exact theory for the ground state and one-particle energies, the superradiant enhancement, the pump-probe spectrum, and the linear absorption to multi-particle states are compared quantitatively to the HLA, to the Bose approximation (where the excitons are treated as bosons), and to perturbation theory. In this comparative study, we use parameter values that are relevant to much studied quasi-one-dimensional J aggregates, such as PIC and TDBC. We find that for these systems the strongest effects of the HLA occur in the oscillator strengths of the ...

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