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Thermalization of a two-dimensional photonic gas in a white wall photon box

机译:白壁光子箱中二维光子气体的热化

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Bose-Einstein condensation, the macroscopic accumulation of bosonic particles in the energetic ground state below a critical temperature, has been demonstrated in several physical systems~(2-8). The perhaps best known example of a bosonic gas, blackbody radiation, however exhibits no Bose-Einstein condensation at low temperatures. Instead of collectively occupying the lowest energy mode, the photons disappear in the cavity walls when the temperature is lowered-corresponding to a vanishing chemical potential. Here we report on evidence for a thermalized two-dimensional photon gas with a freely adjustable chemical potential. Our experiment is based on a dye-filled optical microresonator, acting as a 'white wall' box for photons. Thermalization is achieved in a photon-number-conserving way by photon scattering off the dye molecules, and the cavity mirrors provide both an effective photon mass and a confining potential-key prerequisites for the Bose-Einstein condensation of photons. As a striking example of the unusual system properties, we demonstrate a yet unobserved light concentration effect into the centre of the confining potential, an effect with prospects for increasing the efficiency of diffuse solar light collection.
机译:玻色-爱因斯坦凝聚是一种在临界温度以下处于高能基态的玻色子粒子的宏观积累,已在几种物理系统中得到证明(2-8)。黑体辐射也许是最著名的玻色子气体实例,但是在低温下不会表现出Bose-Einstein凝聚。当温度降低时(对应于消失的化学势),光子不再集体占据最低能量模式,而是在腔壁中消失。在这里,我们报告具有可自由调节的化学势的二维热光子气的证据。我们的实验基于充满染料的光学微谐振器,它充当光子的“白墙”盒子。通过将光子从染料分子上散射出去,以光子数守恒的方式实现热化,并且腔镜为光子的玻色-爱因斯坦凝聚提供了有效的光子质量和约束电势的关键前提。作为异常系统特性的一个突出例子,我们展示了一个尚未观察到的光集中效应进入约束电位的中心,这种效应具有提高散射太阳光收集效率的前景。

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