Huang Ting-En, Lu Yisheng, Wei Zhaozhuo, Li Dawei, Li Qin-Yi, Wang Zhenying, Takahashi Koji, Orejon Daniel, Zhang Peng
Institute of Refrigeration and Cryogenics, Shanghai Jiao Tong University, No. 800 Dongchuan Road, Shanghai 200240, China.
Department of Aeronautics and Astronautics, Kyushu University, 744 Motooka, Fukuoka 819-0395, Japan.
ACS Appl Mater Interfaces. 2024 Oct 2;16(39):53285-53298. doi: 10.1021/acsami.4c12220. Epub 2024 Sep 18.
Rapid and continuous droplet shedding is crucial for many applications, including thermal management, water harvesting, and microfluidics, among others. Superhydrophobic surfaces, though effective, suffer from droplet pinning at high subcooling temperature (). Conversely, slippery liquid-like surfaces covalently bonded with flexible hydrophobic molecules show high stability and low droplet adhesion attributed to their dense and ultrasmooth water repellent polymer chains, enhancing dropwise condensation and rapid shedding. In this work, linear poly(dimethylsiloxane) chains of various viscosities are covalently bonded onto silicon substrates to form thin and smooth monolayer coated surfaces. The formation of the monolayer is characterized by cryogenic transmission electron microscopy. On these surfaces a very low contact angle hysteresis is reported within wide surface temperature ranges as well as continuous dropwise condensation at ultrahigh of 60 K. In particular, one of the highest condensation heat fluxes of 1392.60 kW·m and a heat transfer coefficient of 23.21 kW·m·K at ultrahigh of 60 K is reported. The experimental heat transfer performance is further compared to the theoretical heat transfer via the individual droplets with the droplet distribution elucidated via both macroscopic observations as well as environmental scanning electron microscopy. Finally, only a mild decrease in the heat transfer coefficient of 20.3% after 100 h of condensation test at of 60 K is reported. Slippery liquid-like surfaces promote droplet shedding and sustain dropwise condensation at high without flooding empowered by the lower frictional forces, addressing challenges in heat transfer performance and durability.
快速且持续的液滴脱落对于许多应用至关重要,包括热管理、水收集和微流体等。超疏水表面虽然有效,但在高过冷温度下会出现液滴钉扎现象。相反,与柔性疏水分子共价键合的类滑液表面由于其致密且超光滑的拒水聚合物链而具有高稳定性和低液滴附着力,增强了滴状冷凝和快速脱落。在这项工作中,将各种粘度的线性聚二甲基硅氧烷链共价键合到硅基板上,以形成薄而光滑的单层涂层表面。通过低温透射电子显微镜对单层的形成进行了表征。在这些表面上,在很宽的表面温度范围内报告了非常低的接触角滞后,以及在60 K的超高过冷度下的连续滴状冷凝。特别是,报告了在60 K的超高过冷度下1392.60 kW·m的最高冷凝热通量之一和23.21 kW·m·K的传热系数。通过宏观观察以及环境扫描电子显微镜阐明的液滴分布,将实验传热性能与单个液滴的理论传热进行了进一步比较。最后,在60 K的过冷度下进行100小时冷凝试验后,报告传热系数仅轻微下降20.3%。类滑液表面通过较低的摩擦力促进液滴脱落并在高过冷度下维持滴状冷凝而不会出现泛溢现象,解决了传热性能和耐久性方面的挑战。