| Literature DB >> 33899487 |
Haoming Fang1,2, Wanrong Xie1,3, Xiuqiang Li1, Kebin Fan4, Yi-Ting Lai1, Bowen Sun1, Shulin Bai2, Willie J Padilla4, Po-Chun Hsu1.
Abstract
Thermal management is ubiquitous in the modern world and indispensable for a sustainable future. Radiative heat management provides unique advantages because the heat transfer can be controlled by the surface. However, different object emissivities require different tuning strategies, which poses challenges to develop dynamic and universal radiative heat management devices. Here, we demonstrate a triple-mode midinfrared modulator that can switch between passive heating and cooling suitable for all types of object surface emissivities. The device comprises a surface-textured infrared-semiabsorbing elastomer coated with a metallic back reflector, which is biaxially strained to sequentially achieve three fundamental modes: emission, reflection, and transmission. By analyzing and optimizing the coupling between optical and mechanical properties, we achieve a performance as follows: emittance contrast Δε = 0.58, transmittance contrast Δτ = 0.49, and reflectance contrast Δρ = 0.39. The device can provide a new design paradigm of radiation heat regulation for wearable, robotics, and camouflage technologies.Keywords: camouflage device; dynamic tunability; midinfrared modulator; radiative heat regulation; thermal management
Year: 2021 PMID: 33899487 DOI: 10.1021/acs.nanolett.1c01147
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189