English

Polariton propagation in weak confinement quantum wells

Mesoscale and Nanoscale Physics 2015-05-19 v3

Abstract

Exciton-polariton propagation in a quantum well, under centre-of-mass quantization, is computed by a variational self-consistent microscopic theory. The Wannier exciton envelope functions basis set is given by the simple analytical model of ref. [1], based on pure states of the centre-of-mass wave vector, free from fitting parameters and "ad hoc" (the so called additional boundary conditions-ABCs) assumptions. In the present paper, the former analytical model is implemented in order to reproduce the centre-of-mass quantization in a large range of quantum well thicknesses (5a_B < L < inf.). The role of the dynamical transition layer at the well/barrier interfaces is discussed at variance of the classical Pekar's dead-layer and ABCs. The Wannier exciton eigenstates are computed, and compared with various theoretical models with different degrees of accuracy. Exciton-polariton transmission spectra in large quantum wells (L>> a_B) are computed and compared with experimental results of Schneider et al.\cite{Schneider} in high quality GaAs samples. The sound agreement between theory and experiment allows to unambiguously assign the exciton-polariton dips of the transmission spectrum to the pure states of the Wannier exciton center-of-mass quantization.

Keywords

Cite

@article{arxiv.1006.1991,
  title  = {Polariton propagation in weak confinement quantum wells},
  author = {D. Schiumarini and N. Tomassini and L. Pilozzi and A. D'Andrea},
  journal= {arXiv preprint arXiv:1006.1991},
  year   = {2015}
}

Comments

15 pages, 15 figures; will appear in Phys.Rev.B

R2 v1 2026-06-21T15:34:21.856Z