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用于能量转换的润湿性可控表面。

Wettability Controlled Surface for Energy Conversion.

作者信息

Zhao Weiwei, Jiang Ye, Yu Wenjie, Yu Zeqi, Liu Xiaoqing

机构信息

Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences, 1219 Zhongguan West Road, Zhenhai District, Ningbo, 315201, P. R. China.

University of Chinese Academy of Sciences, Beijing, 100049, P. R. China.

出版信息

Small. 2022 Aug;18(31):e2202906. doi: 10.1002/smll.202202906. Epub 2022 Jul 6.

Abstract

To achieve clean and high-efficiency utilization of renewable energy, functional surfaces with controllable and patternable wettability are becoming a fast-growing research focus. In this work, a laser scribing strategy to fabricate patterned graphene surfaces that are capable of energy conversion in different forms is demonstrated. Using the laser raster-scanning and vector-scanning modes, two distinct surface structures are constructed on polybenzoxazine substrate, yielding a superhydrophilic (LSHL) surface and superhydrophobic (LSHB) surface, respectively. Of particular note is that the unique hierarchical structure of LSHB surface has endowed it with quite a robust superwetting behaviors. Further profiting from the flexibility of the processing method, wettability patterns with spatially resolved LSHL and LSHB regions are designed, achieving the conversion of surface energy to liquid kinetic energy. This also offers a tractable approach to fabricate wettability-engineered devices that enable the directional, pumpless transport of water by capillary pressure gradient and the selective surface cooling via jet impingement. In addition, the LSHB surface demonstrates the high conversion of electric-to-thermal energy (222 °C cm W ) and light-to-thermal energy (88%). Overall, the material system and processing method present a promising step forward to developing easy-fabricated graphene surfaces with spatially controlled wettability for efficient energy utilization and conversion.

摘要

为实现可再生能源的清洁高效利用,具有可控且可图案化润湿性的功能表面正成为快速发展的研究热点。在这项工作中,展示了一种激光刻划策略,用于制造能够进行不同形式能量转换的图案化石墨烯表面。利用激光光栅扫描和矢量扫描模式,在聚苯并恶嗪基底上构建了两种不同的表面结构,分别产生超亲水(LSHL)表面和超疏水(LSHB)表面。特别值得注意的是,LSHB表面独特的分级结构赋予了它相当稳健的超润湿性。进一步受益于加工方法的灵活性,设计了具有空间分辨的LSHL和LSHB区域的润湿性图案,实现了表面能向液体动能的转换。这也为制造润湿性工程器件提供了一种可行的方法,该器件能够通过毛细压力梯度实现水的定向、无泵输送以及通过喷射冲击实现选择性表面冷却。此外,LSHB表面展示了高的电能到热能的转换率(222°C cm W)和光能到热能的转换率(88%)。总体而言,该材料体系和加工方法为开发具有空间可控润湿性的易于制造的石墨烯表面以实现高效能量利用和转换迈出了有前景的一步。

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