Wang Shuqi, Wang Yaming, Zou Yongchun, Chen Guoliang, Ouyang Jiahu, Jia Dechang, Zhou Yu
Institute for Advanced Ceramics, Harbin Institute of Technology, Harbin 150080, China.
Key Laboratory of Advanced Structure-Function Integrated Materials and Green Manufacturing Technology, Harbin Institute of Technology, Harbin 150001, China.
ACS Appl Mater Interfaces. 2021 May 12;13(18):21888-21897. doi: 10.1021/acsami.1c05651. Epub 2021 Apr 28.
Bioinspired materials for temperature regulation have proven to be promising for passive radiation cooling, and super water repellency is also a main feature of biological evolution. However, the scalable production of artificial passive radiative cooling materials with self-adjusting structures, high-efficiency, strong applicability, and low cost, along with achieving superhydrophobicity simultaneously remains a challenge. Here, a biologically inspired passive radiative cooling dual-layer coating (Bio-PRC) is synthesized by a facile but efficient strategy, after the discovery of long-horned beetles' thermoregulatory behavior with multiscale fluffs, where an adjustable polymer-like layer with a hierarchical micropattern is constructed in various ceramic bottom skeletons, integrating multifunctional components with interlaced "ridge-like" architectures. The Bio-PRC coating reflects above 88% of solar irradiance and demonstrates an infrared emissivity >0.92, which makes the temperature drop by up to 3.6 °C under direct sunlight. Moreover, the hierarchical micro-/nanostructures also endow it with a superhydrophobic surface that has enticing damage resistance, thermal stability, and weatherability. Notably, we demonstrate that the Bio-PRC coatings can be potentially applied in the insulated gate bipolar transistor radiator, for effective temperature conditioning. Meanwhile, the coverage of the dense, super water-repellent top polymer-like layer can prevent the transport of corrosive liquids, ions, and electron transition, illustrating the excellent interdisciplinary applicability of our coatings. This work paves a new way to design next-generation thermal regulation coatings with great potential for applications.
用于温度调节的仿生材料已被证明在被动辐射冷却方面具有潜力,超疏水性也是生物进化的一个主要特征。然而,可扩展生产具有自调节结构、高效、强适用性和低成本,同时实现超疏水性的人工被动辐射冷却材料仍然是一个挑战。在此,通过一种简便而有效的策略合成了一种受生物启发的被动辐射冷却双层涂层(Bio-PRC),此前发现了长角甲虫具有多尺度绒毛的温度调节行为,在各种陶瓷底部骨架中构建了具有分级微图案的可调节聚合物样层,将多功能组件与交错的“脊状”结构整合在一起。Bio-PRC涂层反射超过88%的太阳辐照度,并表现出大于0.92的红外发射率,这使得在直射阳光下温度可下降高达3.6℃。此外,分级的微/纳米结构还赋予其超疏水表面,具有诱人的抗损伤性、热稳定性和耐候性。值得注意的是,我们证明了Bio-PRC涂层可潜在应用于绝缘栅双极晶体管散热器,以进行有效的温度调节。同时,致密的超疏水顶部聚合物样层的覆盖可以防止腐蚀性液体、离子的传输以及电子跃迁,说明了我们涂层具有出色的跨学科适用性。这项工作为设计具有巨大应用潜力的下一代热调节涂层开辟了一条新途径。