Theory of fine structure of correlated exciton states in self-assembled semiconductor quantum dots in a magnetic field
Author(s) -
Anna H. Trojnar,
Eugene S. Kadantsev,
Marek Korkusiński,
Paweł Hawrylak
Publication year - 2011
Publication title -
physical review b
Language(s) - English
Resource type - Journals
eISSN - 1538-4489
pISSN - 1098-0121
DOI - 10.1103/physrevb.84.245314
Subject(s) - physics , exciton , quantum dot , condensed matter physics , hamiltonian (control theory) , fine structure , exchange interaction , electron , biexciton , wave function , excited state , magnetic field , coulomb , quantum mechanics , ferromagnetism , mathematical optimization , mathematics
A theory of the fine structure of correlated exciton states in self-assembled parabolic semiconductor quantum dots in a magnetic field perpendicular to the quantum dot plane is presented. The correlated exciton wave function is expanded in configurations consisting of products of electron and heavy-hole 2D harmonic oscillator states (HO) in a magnetic field and the electron spin Sz = \ub11/2 and a heavy-hole spin \u3c4z = \ub13/2 states. Analytical expressions for the short- and long-range electron-hole exchange Coulomb interactionmatrix elements are derived in the HO and spin basis for arbitrary magnetic field. This allows the incorporation of short- and long-range electron-hole exchange, direct electron-hole interaction, and quantum dot anisotropy in the exact diagonalization of the exciton Hamiltonian. The fine structure of ground and excited correlated exciton states as a function of a number of confined shells, quantum dot anisotropy, and magnetic field is obtained using exact diagonalization of the many-body Hamiltonian. The effects of correlations are shown to significantly affect the energy splitting of the two bright exciton states.Peer reviewed: YesNRC publication: Ye
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