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用于高效利用中温热辐射的半透明热光伏

Semitransparent thermophotovoltaics for efficient utilization of moderate temperature thermal radiation.

机构信息

Department of Chemical Engineering, University of Michigan, Ann Arbor, MI 48109.

Department of Electrical Engineering and Computer Science, University of Michigan, Ann Arbor, MI 48109.

出版信息

Proc Natl Acad Sci U S A. 2022 Nov 29;119(48):e2215977119. doi: 10.1073/pnas.2215977119. Epub 2022 Nov 21.

Abstract

Recent advances in thermophotovoltaic (TPV) power generation have produced notable gains in efficiency, particularly at very high emitter temperatures. However, there remains substantial room for improving TPV conversion of waste, solar, and nuclear heat streams at temperatures below 1,100°C. Here, we demonstrate the concept of transmissive spectral control that enables efficient recuperation of below-bandgap photons by allowing them to transmit through the cell to be absorbed by a secondary emitter. We fabricate a semitransparent TPV cell consisting of a thin InGaAs-InP heterojunction membrane supported by an infrared-transparent heat-conducting substrate. The device absorbs less than 1% of below-bandgap radiation, resulting in a TPV efficiency of 32.5% at an emitter temperature of 1,036°C. To our knowledge, this represents an 8% absolute improvement (~33% relative) in efficiency relative to the best TPV devices at such low temperatures. By enabling near-zero photon loss, the semitransparent architecture facilitates high TPV efficiencies over a wide range of applications.

摘要

最近在热光伏(TPV)发电方面的进展在效率方面取得了显著提高,特别是在非常高的发射器温度下。然而,在 1100°C 以下的温度下,仍有很大的空间可以提高 TPV 对废物、太阳能和核热流的转换效率。在这里,我们展示了透过光谱控制的概念,通过允许它们透过电池传输并被二次发射器吸收,从而实现对带隙以下光子的高效回收。我们制造了一种由支撑在红外透明导热衬底上的薄 InGaAs-InP 异质结膜组成的半透明 TPV 电池。该器件吸收不到 1%的带隙以下辐射,在发射器温度为 1036°C 时,TPV 效率达到 32.5%。据我们所知,与如此低温度下的最佳 TPV 器件相比,这代表了效率提高了 8%(约 33%的相对提高)。通过实现近零光子损耗,半透明架构在广泛的应用中实现了高效率。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/16c1/9860151/500c078940e0/pnas.2215977119fig01.jpg

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