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Beating the brightness theorem: thermodynamics of light recycling (experimental)

机译:打破亮度定理:光循环的热力学(实验性)

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The brightness theorem states that it is impossible to increase the spectral radiance of light by passive optical devices, which seems intuitive because spectral radiance is connected to temperature; increasing it seems to violate the second law of thermodynamics. However, consider a gray thermal source, that is a source that emits thermal radiation but with less than unit emissivity. Kirchhoff s law states that absorptivity is equal to emissivity. Thus if we redirect part of the emitted radiation back onto the source, some of it would not be absorbed but either transmitted or reflected instead. Consequently, this radiation would be superposed to the thermal radiation from the source in the same phase space and thereby the spectral radiance would be increased. In fact, thermal sources such as high pressure discharge lamps feature absorptivity-emissivity values far below unity. In this contribution with spectroscopic measurement we show that for such sources the spectral brightness can be increased. This does not contradict the second law because light recycling reduces the irreversible entropy production inherent to the radiation process. It is equivalent to increasing the optical thickness of sources for the price of reducing the total phase space of emitted radiation by the same factor.
机译:亮度定理指出,无源光学设备不可能增加光的光谱辐射率,这看起来很直观,因为光谱辐射率与温度有关;增加它似乎违反了热力学第二定律。但是,请考虑使用灰色热源,即发出热辐射但小于单位发射率的热源。基尔霍夫定律指出,吸收率等于发射率。因此,如果我们将发射的辐射的一部分重定向回源,则其中的某些辐射将不会被吸收,而是被透射或反射。因此,该辐射将在相同的相空间中与来自光源的热辐射叠加,从而光谱辐射率将增加。实际上,诸如高压放电灯的热源的吸收率-发射率值远低于1。在对光谱测量的贡献中,我们表明对于此类光源,可以提高光谱亮度。这与第二定律不矛盾,因为光循环减少了辐射过程固有的不可逆的熵产生。这相当于以减少发射辐射的总相空间相同的代价增加光源的光学厚度。

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