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Thin semiconducting layers as active and passive emitters for thermophotonics and thermophotovoltaics

机译:薄半导体层作为热光子学和热光电学的有源和无源发射器

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摘要

Thermophotovoltaics involves the photovoltaic conversion by a receiver cell of radiation from an emitter, which could be heated by various sources including sunlight. A prime difference from normal solar photovoltaics is that emitted energy unable to be used by the receiver can, in principle, be recycled allowing high conversion efficiency. Thermophotonics is a recent development of this concept where the emitter is "active", namely a heated diode, increasing the rate of energy transfer for a given emitter temperature and concentrating emission in an energy range more suited for conversion by the receiver. This paper evaluates thin semiconducting layers as emitters for thermophotovoltaics and thermophotonics. It is shown that thermophotonics avoids a major challenge for thermophotovoltaics: the sensitive dependence of system efficiency on the recycling of below bandgap radiation. Possible ways of achieving the high external quantum efficiency light-emitting diode required for thermophotonics are discussed.
机译:热光电涉及通过接收器电池对来自发射器的辐射进行的光伏转换,该辐射可以被包括日光在内的各种来源加热。与普通太阳能光伏电池的主要区别在于,原则上可以将接收器无法使用的发射能量进行回收,从而实现高转换效率。热光子学是该概念的最新发展,其中发射器是“有源的”,即加热的二极管,可提高给定发射器温度下的能量传输速率,并将发射集中在更适合接收器转换的能量范围内。本文评估了薄半导体层作为热光电和热光子的发射极。结果表明,热光子学避免了热光电技术的主要挑战:系统效率对低于带隙辐射的再循环的敏感依赖性。讨论了实现热光子学所需的高外部量子效率发光二极管的可能方法。

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