Bose-Einstein condensation of light: General theory
Denis Nikolaevich Sob'yanin

TL;DR
This paper develops a comprehensive theory for Bose-Einstein condensation of light in dye-filled microcavities, capturing fluctuations, polarization, and nonclassical states without grand canonical approximation.
Contribution
It introduces a hierarchical maximum entropy-based theory that accurately describes light BEC, including fluctuations and polarization effects, beyond previous approximations.
Findings
Predicts sub-Poissonian photon statistics in condensates
Demonstrates sharp coherence jumps at the phase transition
Shows potential for nonclassical light generation
Abstract
A theory of Bose-Einstein condensation of light in a dye-filled optical microcavity is presented. The theory is based on the hierarchical maximum entropy principle and allows one to investigate the fluctuating behavior of the photon gas in the microcavity for all numbers of photons, dye molecules, and excitations at all temperatures, including the whole critical region. The master equation describing the interaction between photons and dye molecules in the microcavity is derived and the equivalence between the hierarchical maximum entropy principle and the master equation approach is shown. The cases of a fixed mean total photon number and a fixed total excitation number are considered, and a much sharper, nonparabolic onset of a macroscopic Bose-Einstein condensation of light in the latter case is demonstrated. The theory does not use the grand canonical approximation, takes into…
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