CAS Key Laboratory of Mechanical Behavior and Design of Materials, Department of Precision Machinery and Precision Instrumentation, University of Science and Technology of China, Hefei 230026, China.
Nanoscale. 2019 Jan 17;11(3):1370-1378. doi: 10.1039/c8nr09348b.
Functional materials with specific bubble wettability play an important role in manipulating the behavior of underwater gas bubbles. Inspired by the natural Pitcher plant, we designed a large area lubricated slippery surface (LSS) by femtosecond laser processing for buoyancy-driven bubble self-transport and efficient gas capture. The mechanism of bubble self-transport involves a competition between the buoyancy and the resistance due to drag force and hysteresis. The transportation velocity of the bubbles on the LSS is strongly associated with the surface tension of the lubricants. The lower the surface tension, the higher the sliding velocity. On the basis of sufficient bubble adhesion, the shaped LSS tracks are fabricated to guide the bubble movement and achieve continuous manipulation between bubble merging and detachment. We demonstrate that these designable pathways on the LSS not only manipulate bubble behavior in a two-dimensional space but also realize three-dimensional movement of bubbles on the Mobius-striped LSS. Finally, a gas catcher decorated with large area LSS is manufactured for underwater bubble capture, which maintains a high capture efficiency (more than 90%) with an air output of ∼3.4 L min-1. This finding reveals a meaningful interaction between the underwater bubbles and the LSS surface, accelerating the applications of bubble slippery surfaces in underwater flammable gas collection and tail gas treatment.
具有特定气泡润湿性的功能材料在操控水下气泡行为方面发挥着重要作用。受自然猪笼草的启发,我们通过飞秒激光加工设计了大面积润滑滑爽表面(LSS),用于浮力驱动气泡自传输和高效气体捕获。气泡自传输的机制涉及浮力和由于阻力和滞后引起的阻力之间的竞争。气泡在 LSS 上的传输速度与润滑剂的表面张力密切相关。表面张力越低,滑动速度越高。在有足够气泡附着力的基础上,制造了成型的 LSS 轨道来引导气泡运动,并实现气泡合并和脱离之间的连续操控。我们证明,这些 LSS 上的可设计路径不仅可以在二维空间中操控气泡行为,还可以实现莫比乌斯带 LSS 上的气泡三维运动。最后,制造了一个带有大面积 LSS 的气体收集器用于水下气泡捕获,它保持了高捕获效率(超过 90%),空气输出约为 3.4 L min-1。这一发现揭示了水下气泡与 LSS 表面之间的有意义的相互作用,加速了气泡滑爽表面在水下易燃气体收集和尾气处理中的应用。