Key Laboratory of Bio-inspired Smart Interfacial Science and Technology of Ministry of Education, School of Chemistry, Beihang University, Beijing 100191, China.
Department of Bioengineering, University of California, Los Angeles, Los Angeles, California 90095, United States.
Nano Lett. 2021 Mar 10;21(5):2117-2123. doi: 10.1021/acs.nanolett.0c04814. Epub 2021 Feb 18.
Gas bubble manipulations in liquid have long been a concern because of their vital roles in various gas-related fields. To deal with the weakness in long-distance gas transportation of previous works, we took inspiration from the ridgelike structure on pitcher's peristome and successfully prepared a two-dimensional superaerophilic surface decorated with asymmetric aerophobic barriers capable of unidirectional and long-distance gas bubble delivery. For the first time, this process was investigated by in situ bubble-releasing experiments recorded by a high-speed camera and finite element modeling, which demonstrates a kinetic process regulated by the anisotropic motion resistance arising from the patterns. Furthermore, the -inspired two-dimensional surface (NATS) was integrated into a water electrolysis system for H directional transportation and efficient collection. As a result, the NATS design was proved to be a potential solution for facile manipulation of gas bubbles and provides a simple, adaptive, and reliable strategy for long-range gas transport underwater.
长久以来,人们一直关注液体中的气泡操控问题,因为气泡在与气体相关的各个领域都发挥着重要作用。为了解决以往工作中长距离气体输送的弱点,我们从 pitcher 的 peristome 上的脊状结构中获得灵感,成功制备了一种二维超亲气表面,该表面装饰有不对称的疏气屏障,能够实现单向和长距离的气泡输送。通过高速摄像机记录的原位气泡释放实验和有限元建模,首次对这一过程进行了研究,该实验展示了由图案引起的各向异性运动阻力调节的动力学过程。此外,受 pitcher 启发的二维表面(NATS)被整合到水电解系统中,用于 H 方向的输送和高效收集。结果表明,NATS 设计是一种用于气泡简便操控的潜在解决方案,为水下长距离气体输送提供了一种简单、自适应和可靠的策略。