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Thermophotonics

机译:热光子学

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摘要

Thermophotonics (TPX) is a recently proposed concept, which generalizes thermophotovoltaics (TPV) by allowing the radiation from the heat source to be increased by an internal electrochemical potential difference. This paper examines the basic working principle of TPX by means of detailed balance calculations. In these calculations TPX is not only modelled by the highly idealized standard Shockley-Queisser analysis but also in a more realistic manner, in which two typical parasitic loss mechanisms are included: (a) non-radiative recombination and (b) non-zero absorptivity/emissivity in the sub-bandgap energy spectrum. We show that TPX, in principle, allows a much higher rate of electrical power extraction from a heat source than TPV. When applying TPX to the conversion of solar energy we furthermore show that for a realistic absorber geometry TPX has a substantially higher theoretical conversion efficiency than TPV, particularly in the presence of parasitic sub-bandgap absorption/emission. Additionally, the range of suitable bandgap energies for TPX is greatly enhanced towards larger values over that of TPV. An essential requirement, however, is very high external electro-luminescent quantum efficiency.
机译:热光子学(TPX)是最近提出的概念,它通过允许来自热源的辐射因内部电化学势差而增加,从而概括了热电学(TPV)。本文通过详细的余额计算来研究TPX的基本工作原理。在这些计算中,不仅通过高度理想化的标准Shockley-Queisser分析对TPX进行建模,而且还以更现实的方式建模,其中包括两种典型的寄生损耗机制:(a)非辐射复合和(b)非零吸收率子带隙能谱中的/发射率。我们证明,TPX原则上比TPV允许从热源提取电的速率更高。当将TPX应用于太阳能转换时,我们进一步表明,对于实际的吸收体几何形状,TPX具有比TPV更高的理论转换效率,特别是在存在寄生亚带隙吸收/发射的情况下。此外,与TPV相比,TPX的合适带隙能量范围大大提高。然而,基本要求是非常高的外部电致发光量子效率。

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