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基于纤维素的辐射冷却和太阳能加热为离子热电器供能。

Cellulose-Based Radiative Cooling and Solar Heating Powers Ionic Thermoelectrics.

机构信息

Laboratory of Organic Electronics, Department of Science and Technology, Linköping University, Norrköping, SE-601 74, Sweden.

Wallenberg Wood Science Center, Linköping University, Norrköping, SE-601 74, Sweden.

出版信息

Adv Sci (Weinh). 2023 Mar;10(8):e2206510. doi: 10.1002/advs.202206510. Epub 2023 Jan 16.

Abstract

Cellulose opens for sustainable materials suitable for radiative cooling thanks to inherent high thermal emissivity combined with low solar absorptance. When desired, solar absorptance can be introduced by additives such as carbon black. However, such materials still shows high thermal emissivity and therefore performs radiative cooling that counteracts the heating process if exposed to the sky. Here, this is addressed by a cellulose-carbon black composite with low mid-infrared (MIR) emissivity and corresponding suppressed radiative cooling thanks to a transparent IR-reflecting indium tin oxide coating. The resulting solar heater provides opposite optical properties in both the solar and thermal ranges compared to the cooler material in the form of solar-reflecting electrospun cellulose. Owing to these differences, exposing the two materials to the sky generated spontaneous temperature differences, as used to power an ionic thermoelectric device in both daytime and nighttime. The study characterizes these effects in detail using solar and sky simulators and through outdoor measurements. Using the concept to power ionic thermoelectric devices shows thermovoltages of >60 mV and 10 °C temperature differences already at moderate solar irradiance of ≈400 W m .

摘要

纤维素具有固有高热发射率和低太阳吸收率,因此适用于可持续材料,可用于辐射冷却。如需提高太阳吸收率,可添加炭黑等添加剂。然而,此类材料仍具有高热发射率,因此在暴露于天空时会进行辐射冷却,从而抵消加热过程。通过使用具有低中红外(MIR)发射率的纤维素-炭黑复合材料,并使用透明的铟锡氧化物(ITO)涂层来相应地抑制辐射冷却,可解决这一问题。由此产生的太阳能集热器在太阳能和热范围中提供了与冷却器材料相反的光学特性,冷却器材料以太阳能反射的静电纺丝纤维素的形式存在。由于这些差异,将这两种材料暴露在天空中会产生自发的温度差异,可用于在白天和夜间为离子热电设备供电。本研究使用太阳模拟器和户外测量详细地对这些效果进行了表征。使用该概念为离子热电设备供电,在 400 W/m 的适度太阳辐照度下,即可产生>60 mV 的热电电压和 10°C 的温度差。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b7cb/10015909/abd375568bd7/ADVS-10-2206510-g005.jpg

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