VO2 metasurface smart thermal emitter with high visual transparency for passive radiative cooling regulation in space and terrestrial applications

Author:

Sun Kai12ORCID,Xiao Wei12ORCID,Wheeler Callum12ORCID,Simeoni Mirko3ORCID,Urbani Alessandro3ORCID,Gaspari Matteo3ORCID,Mengali Sandro3ORCID,de Groot C.H. (Kees)2ORCID,Muskens Otto L.1ORCID

Affiliation:

1. Physics and Astronomy, Faculty of Physical Sciences and Engineering , University of Southampton , Southampton SO17 1BJ , UK

2. Electronics and Computer Science, Faculty of Physical Sciences and Engineering , University of Southampton , Southampton SO17 1BJ , UK

3. Consorzio CREO , SS.17 Località Boschetto , L’Aquila 1-67100 , Italy

Abstract

Abstract Smart radiative cooling devices based on thermochromic materials such as vanadium dioxide (VO2) are of practical interest for temperature regulation and artificial homeostasis, i.e., maintaining stable equilibrium conditions for survival, both in terrestrial and space applications. In traditional solar reflector configurations, solar absorption in the VO2 layer is a performance limiting factor due to the multiple reflections of sunlight in the stack. Here, we demonstrate a visually transparent, smart radiator panel with reduced solar absorption. An Al-doped ZnO transparent conducting oxide layer acts as a frequency selective infrared back-reflector with high transmission of solar radiation. In this study we make use of high-quality VO2 thin films deposited using atomic layer deposition and optimized annealing process. Patterning of the VO2 layer into a metasurface results in a further reduction of the solar absorption parameter α to around 0.3, while exhibiting a thermal emissivity contrast Δε of 0.26 by exploiting plasmonic enhancement effects. The VO2 metasurface provides a visual spectrum transmission of up to 62%, which is of interest for a range of applications requiring visual transparency. The transparent smart metasurface thermal emitter offers a new approach for thermal management in both space and terrestrial radiative cooling scenarios.

Publisher

Walter de Gruyter GmbH

Subject

Electrical and Electronic Engineering,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials,Biotechnology

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