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Band structure, phase transitions, and semiconductor analogs in one-dimensional solid light systems

Source: Phys. Rev. A 80, 063838 (2010); doi:10.1103/PhysRevA.80.063838

Published 28 December 2009

KEYWORDS and PACS
Keywords
PACS
  • 42.50.Pq
    Cavity quantum electrodynamics; micromasers
  • 64.70.Tg
    Quantum phase transitions
  • 71.36.+c
    Polaritons
  • YEAR: 2009
PUBLICATION DATA
Publisher:
AIP is a member of CrossRef APS
James Quach,1,2 Melissa I. Makin,1,2 Chun-Hsu Su,1,2 Andrew D. Greentree,1 and Lloyd C. L. Hollenberg1,2
1School of Physics, The University of Melbourne, Victoria 3010, Australia
2Centre for Quantum Computer Technology, School of Physics, The University of Melbourne, Victoria 3010, Australia

The conjunction of atom-cavity physics and photonic structures (“solid light” systems) offers new opportunities in terms of more device functionality and the probing of designed emulators of condensed-matter systems. By analogy to the canonical one-electron approximation of solid-state physics, we propose a one-polariton approximation to study these systems. Using this approximation, we apply Bloch states to the uniformly tuned Jaynes-Cummings-Hubbard model to analytically determine the energy-band structure. By analyzing the response of the band structure to local atom-cavity control, we explore its application as a quantum simulator and show phase-transition features absent in mean-field theory. Using this approach for solid light systems, we extend the analysis to include detuning impurities to show the solid light analogy of the semiconductor. This investigation also shows features with no semiconductor analog. ©2009 The American Physical Society
History: Received 15 September 2009; published 28 December 2009
Permalink: http://link.aps.org/abstract/PRA/v80/e063838
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