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      Thermalization of a two-dimensional photon gas in a polymeric host matrix

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          Abstract

          We investigate thermodynamic properties of a two-dimensional photon gas confined by a dye-filled optical microcavity. A thermally equilibrated state of the photon gas is achieved by radiative coupling to a heat bath that is realized with dye molecules embedded in a polymer at room temperature. The chemical potential of the gas is freely adjustable. The optical microcavity consisting of two curved mirrors induces both a non-vanishing effective photon mass and a harmonic trapping potential for the photons. While previous experiments of our group have used liquid dye solutions, the measurements described here are based on dye molecules incorporated into a polymer host matrix. We describe studies of fluorescence properties of dye-doped polymers, and discuss the applicability of Kennard-Stepanov theory in this system. We observe a thermalized two-dimensional photon gas in the solid state based microresonator system. In the future, dye-based solid state systems hold promise for the realization of single-mode light sources in thermal equilibrium based on Bose-Einstein condensation of photons, as well as for solar energy concentrators.

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          Author and article information

          Journal
          23 January 2012
          2012-08-02
          Article
          10.1088/1367-2630/14/7/075019
          1201.4658
          4ddaf3c6-71cb-4c7b-83c9-0e2ff723813b

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

          History
          Custom metadata
          New Journal of Physics 14, 075019 (2012)
          19 pages, 6 figures
          cond-mat.quant-gas

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