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Theory of Photon Condensation in a Spatially-Varying Electromagnetic Field

Mesoscale and Nanoscale Physics 2020-09-25 v3 Quantum Physics

Abstract

The realization of equilibrium superradiant quantum phases (photon condensates) in a spatially-uniform quantum cavity field is forbidden by a "no-go" theorem stemming from gauge invariance. We here show that the no-go theorem does not apply to spatially-varying quantum cavity fields. We find a criterion for its occurrence that depends solely on the static, non-local orbital magnetic susceptibility χorb(q)\chi_{\rm orb}(q), of the electronic system (ES) evaluated at a cavity photon momentum q\hbar q. Only 3DESs satisfying the Condon inequality χorb(q)>1/(4π)\chi_{\rm orb}(q)>1/(4\pi) can harbor photon condensation. For the experimentally relevant case of two-dimensional (2D) ESs embedded in quasi-2D cavities the criterion again involves χorb(q)\chi_{\rm orb}(q) but also the vertical size of the cavity. We use these considerations to identify electronic properties that are ideal for photon condensation. Our theory is non-perturbative in the strength of electron-electron interaction and therefore applicable to strongly correlated ESs.

Keywords

Cite

@article{arxiv.2005.09088,
  title  = {Theory of Photon Condensation in a Spatially-Varying Electromagnetic Field},
  author = {G. M. Andolina and F. M. D. Pellegrino and V. Giovannetti and A. H. MacDonald and M. Polini},
  journal= {arXiv preprint arXiv:2005.09088},
  year   = {2020}
}

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25 pages