Cui Tianyang, Zheng Yapeng, Hu Mengdi, Lin Bicheng, Wang Jingwen, Cai Wei, Fei Bin, Zhu Jixin, Hu Yuan
State Key Laboratory of Fire Science, University of Science and Technology of China, Hefei, 230026, P. R. China.
School of Fashion and Textiles, The Hong Kong Polytechnic University, Hong Kong, SAR, 999077, China.
Small. 2024 Aug;20(35):e2312083. doi: 10.1002/smll.202312083. Epub 2024 Apr 22.
Due to the ubiquitous and inexhaustible solar source, photothermal materials have gained considerable attention for their potential in heating and de-icing. Nevertheless, traditional photothermal materials, exemplified by graphene, frequently encounter challenges emanating from their elevated reflectance. Inspired by ocular structures, this study uses the Fresnel equation to enhance the photo-thermal conversion efficiency of graphene by introducing a polydimethylsiloxane (PDMS)/silicon dioxide (SiO) coating, which reduces the light reflectance (≈20%) through destructive interference. The designed coating achieves an equilibrium temperature of ≈77 °C at one sun and a quick de-icing in ≈65 s, all with a thickness of 5 µm. Simulations demonstrate that applying this coating to high-rise buildings results in energy savings of ≈31% in winter heating. Furthermore, the combination of PDMS/SiO and graphene confers a notable enhancement in thermal stability through a synergistic flame-retardant mechanism, effectively safeguarding polyurethane against high temperatures and conflagrations, leading to marked reduction of 58% and 28% in heat release rate and total heat release. This innovative design enhances the photo-thermal conversion, de-icing function, and flame retardancy of graphene, thereby advancing its applications in outdoor equipment, high-rise buildings, and aerospace vessels.
由于太阳能无处不在且取之不尽,光热材料因其在加热和除冰方面的潜力而备受关注。然而,以石墨烯为代表的传统光热材料,常常因其较高的反射率而面临挑战。受眼部结构启发,本研究利用菲涅耳方程,通过引入聚二甲基硅氧烷(PDMS)/二氧化硅(SiO)涂层来提高石墨烯的光热转换效率,该涂层通过相消干涉降低光反射率(约20%)。设计的涂层在一个太阳光照下达到约77°C的平衡温度,并在约65秒内快速除冰,涂层厚度均为5微米。模拟表明,将这种涂层应用于高层建筑可在冬季供暖中节省约31%的能源。此外,PDMS/SiO与石墨烯的组合通过协同阻燃机制显著提高了热稳定性,有效保护聚氨酯免受高温和火灾影响,使热释放速率和总热释放分别显著降低58%和28%。这种创新设计提高了石墨烯的光热转换、除冰功能和阻燃性,从而推动了其在户外设备、高层建筑和航空航天器中的应用。