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通过3D宏观/微观结构的机械引导组装实现的可逆太阳能加热和辐射冷却装置

Reversible Solar Heating and Radiative Cooling Devices via Mechanically Guided Assembly of 3D Macro/Microstructures.

作者信息

Lee Su Eon, Seo Junyong, Kim Simon, Park Jun Hyun, Jin Ho Jun, Ko Janghun, Kim Jang Hwan, Kang Heemin, Kim Jin-Tae, Lee Heon, Lee Bong Jae, Kim Bong Hoon

机构信息

Department of Robotics and Mechatronics Engineering, DGIST, Daegu, 42988, Republic of Korea.

Energy Efficiency Research Division, KIER, Daejeon, 34129, Republic of Korea.

出版信息

Adv Mater. 2024 Sep;36(39):e2400930. doi: 10.1002/adma.202400930. Epub 2024 Jul 4.

DOI:10.1002/adma.202400930
PMID:38940323
Abstract

Solar heating and radiative cooling are promising solutions for decreasing global energy consumption because these strategies use the Sun (≈5800 K) as a heating source and outer space (≈3 K) as a cooling source. Although high-performance thermal management can be achieved using these eco-friendly methods, they are limited by daily temperature fluctuations and seasonal changes because of single-mode actuation. Herein, reversible solar heating and radiative cooling devices formed via the mechanically guided assembly of 3D architectures are demonstrated. The fabricated devices exhibit the following properties: i) The devices reversibly change between solar heating and radiative cooling under uniaxial strain, called dual-mode actuation. ii) The 3D platforms in the devices can use rigid/soft materials for functional layers owing to the optimized designs. iii) The devices can be used for dual-mode thermal management on a macro/microscale. The devices use black paint-coated polyimide (PI) films as solar absorbers with multilayered films comprising thin layers of polydimethylsiloxane/silver/PI, achieving heating and cooling temperatures of 59.5 and -11.9 °C, respectively. Moreover, mode changes according to the angle of the 3D structures are demonstrated and the heating/cooling performance with skin, glass, steel, aluminum, copper, and PI substrates is investigated.

摘要

太阳能加热和辐射冷却有望成为降低全球能源消耗的解决方案,因为这些策略分别利用太阳(约5800K)作为加热源,外层空间(约3K)作为冷却源。尽管使用这些环保方法可以实现高性能的热管理,但由于单模式驱动,它们受到每日温度波动和季节变化的限制。在此,展示了通过3D架构的机械引导组装形成的可逆太阳能加热和辐射冷却装置。所制造的装置具有以下特性:i)在单轴应变下,装置在太阳能加热和辐射冷却之间可逆切换,称为双模式驱动。ii)由于优化设计,装置中的3D平台可以使用刚性/柔性材料作为功能层。iii)该装置可用于宏观/微观尺度的双模式热管理。该装置使用涂有黑色涂料的聚酰亚胺(PI)薄膜作为太阳能吸收器,其多层膜由聚二甲基硅氧烷/银/PI薄层组成,加热和冷却温度分别达到59.5和-11.9°C。此外,还展示了根据3D结构角度的模式变化,并研究了在皮肤、玻璃、钢、铝、铜和PI基板上的加热/冷却性能。

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