Radiative cooling of solar absorbers using a visibly transparent photonic crystal thermal blackbody
Радиативное охлаждение солнечных абсорберов с использованием видимо прозрачного фотонного кристалла в роли теплового черного тела
2015-09-21
SCID: 54.1/pxb6d24h
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radiative coolingsilicon absorbersolar absorberthermal blackbodyvisibly transparent photonic crystal
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Abstract (AI)
A solar absorber, under the sun, is heated up by sunlight. In many applications, including solar cells and outdoor structures, the absorption of sunlight is intrinsic for either operational or aesthetic considerations, but the resulting heating is undesirable. Because a solar absorber by necessity faces the sky, it also naturally has radiative access to the coldness of the universe. Therefore, in these applications it would be very attractive to directly use the sky as a heat sink while preserving solar absorption properties. Here we experimentally demonstrate a visibly transparent thermal blackbody, based on a silica photonic crystal. When placed on a silicon absorber under sunlight, such a blackbody preserves or even slightly enhances sunlight absorption, but reduces the temperature of the underlying silicon absorber by as much as 13 °C due to radiative cooling. Our work shows that the concept of radiative cooling can be used in combination with the utilization of sunlight, enabling new technological capabilities.
Key Findings
1
A visibly transparent thermal blackbody based on a silica photonic crystal was experimentally demonstrated.
2
The photonic-crystal blackbody reduced the temperature of the underlying silicon absorber by up to 13 °C via radiative cooling.
3
The work demonstrates radiative cooling can be combined with sunlight utilization for practical applications like solar cells and outdoor structures.
4
When placed on a silicon solar absorber under sunlight, the photonic-crystal blackbody preserved or slightly enhanced sunlight absorption.
Research Object
Visibly transparent photonic-crystal thermal blackbody (silica photonic crystal) placed on a silicon solar absorber under sunlight
Research Subject
Radiative cooling effect on the silicon solar absorber while preserving or enhancing visible sunlight absorption, quantified as temperature reduction (up to 13 °C) due to the photonic-crystal thermal blackbody
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2015-09-21
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