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Optically Switched and High-Energy Azobenzene-Based Wearable Solar Thermal Fabrics for Effective Body Temperature
Xueshen Peng1, Jiajie Dai1, Zekun Chen1
1School of Materials and Energy, Guangdong University of Technology, Guangzhou, Guangdong 510006, P. R. China.
None:
Photoisomeric azobenzene-based phase-change storage materials (AZO-PCMs)/polymer fabrics have garnered significant interests for solvent-free and photocontrolled phase transition storage applications. Nevertheless, high molecular weight and low thermal conductivity of polymer fabrics lead to restricted energy and power density. Here, optically switched and high-energy wearable solar thermal fabrics (STFs) are developed by templating different AZO-PCMs to functionalized carbon nanofiber cloth (FCFC). Thereinto, the AZO-PCMs are utilized as photocontrollable phase-change energy storage materials, while the FCFC is applied as a flexible, high thermal conductivity, and low-mass substrate to further significantly improve the energy storage capacity by enhanced intermolecular interactions (particularly the H-bonds) and achieve rapid heat release under visible light excitation. By optimizing the molecular structure, loading capacity, and photoexcitation condition, a high energy density of 58.44 Wh kg-1 and a high thermal conductivity of 3.13 W m-1 K-1 can be obtained. Surprisingly, a high power density of 1402.56 W kg-1 is implemented under green light, which is 3420 times as much as that by spontaneous heat release in the dark, showing an effectively light-actuated heat release. Moreover, the excellent bending, long-cycling stability, and large temperature rise of this wearable STFs have been proved for effective body temperature regulation.
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