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用于多功能光热防护涂层的仿生中空碳微管

Bio-Inspired Hollow Carbon Microtubes for Multifunctional Photothermal Protective Coatings.

作者信息

Li Hao, Li Yong, Wu Jun, Jia Xiaohua, Yang Jin, Shao Dan, Feng Lei, Wang Sizhe, Song Haojie

机构信息

School of Materials Science & Engineering, Shaanxi Key Laboratory of Green Preparation and Functionalization for Inorganic Materials, Shaanxi University of Science & Technology, Xi'an 710021, PR China.

出版信息

ACS Appl Mater Interfaces. 2022 Jun 29;14(25):29302-29314. doi: 10.1021/acsami.2c07232. Epub 2022 Jun 15.

DOI:10.1021/acsami.2c07232
PMID:35707960
Abstract

Solar energy-facilitated materials are promising to solve energy problems by converting clean solar energy to thermal energy. However, heat loss of photothermal materials still limits the photothermal conversion phenomenon. Herein, we designed bio-inspired hollow carbon microtubes (HCMTs) by one-step carbonization of renewable cotton fibers, which can avoid the complex preparation procedures of the template method. Similar to polar bears, the hollow construction can efficiently reduce heat loss, which improves the utilization of light and photothermal property. The HCMTs can be applied on a variety of substrates to obtain multifunctional photothermal protective coatings. The temperature of the coating can rapidly warm up to 97.7 °C under 1 kW/m sun irradiation. In addition, the coatings show excellent superhydrophobic property (CA of 161.5 ± 0.9°), which can prevent the adhesion of the contaminant and maintain the long-time photothermal property of the surface. Also, the coating is able to withstand sandpaper abrasion, repeat tape-peeling, and tribological friction without losing superhydrophobic properties, indicating remarkable mechanical stability. Furthermore, the coating can withstand high-temperature calcination (400 °C), long-time UV radiation, and corrosive liquid erosion, which exhibits prominent chemical stability. More importantly, the combination of active deicing and passive anti-icing of the coating can effectively prevent the formation and accumulation of ice on the surface. The outstanding environmental adaptability can greatly extend its lifespan and meet the long-term service conditions.

摘要

太阳能辅助材料有望通过将清洁太阳能转化为热能来解决能源问题。然而,光热材料的热损失仍然限制了光热转换现象。在此,我们通过可再生棉纤维的一步碳化设计了受生物启发的中空碳微管(HCMTs),这可以避免模板法复杂的制备过程。与北极熊类似,中空结构可以有效减少热损失,从而提高光的利用率和光热性能。HCMTs可以应用于各种基材上,以获得多功能光热保护涂层。在1 kW/m的太阳辐射下,涂层温度可迅速升温至97.7°C。此外,涂层表现出优异的超疏水性能(接触角为161.5±0.9°),可以防止污染物附着并保持表面的长期光热性能。而且,该涂层能够承受砂纸磨损、反复胶带剥离和摩擦学摩擦而不失去超疏水性能,表明其具有显著的机械稳定性。此外,该涂层能够承受高温煅烧(400°C)、长时间紫外线辐射和腐蚀性液体侵蚀,表现出突出的化学稳定性。更重要的是,涂层的主动除冰和被动防冰相结合可以有效防止表面结冰和积冰。出色的环境适应性可以大大延长其使用寿命并满足长期使用条件。

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