Zhang Yurong, Li Lijun, Li Gang, Lin Zhen, Wang Ruteng, Chen Daobing, Lei Yifeng, Tan Di, Wang Zuankai, Zhao Yan, Xue Longjian
The Institute of Technological Sciences, School of Power and Mechanical Engineering, Wuhan University, South Donghu Road 8, Hubei, Wuhan 430072, China.
Hubei Key Laboratory of Electronic Manufacturing and Packaging Integration, Wuhan University, Wuhan 430072, China.
Sci Adv. 2025 Apr 4;11(14):eadt9526. doi: 10.1126/sciadv.adt9526.
On-demand liquid transportation is fundamentally important and holds great potential in various fields, such as water collection and biological engineering. However, it remains highly challenging to in situ manipulate the direction of liquid flow on a lyophilic surface. Here, a topological elastic liquid diode (TELD) that could manipulate the flow direction is developed by combining the leaf inspired ratchet array and the elasticity of silicon rubber. The flow pathway on the lyophilic TELD can be conveniently managed by regulating the competition forces along orthogonal directions at the liquid front, which is instantly realized by adjusting the mechanical strain in TELD (mode 1 regulation) or inserting extra forces at the liquid front (mode 2 regulation). Furthermore, TELD can serve as a logic gate, stress valve, microfluidic reactor, and fog collector. Thus, the work here establishes strategies for in situ and instant manipulation of liquid flow on a lyophilic surface.
按需液体传输至关重要,在诸如集水和生物工程等各个领域都具有巨大潜力。然而,在亲液表面原位操控液流方向仍然极具挑战性。在此,通过结合受叶片启发的棘轮阵列和硅橡胶的弹性,开发出一种能够操控流动方向的拓扑弹性液体二极管(TELD)。亲液TELD上的流动路径可通过调节液体前沿沿正交方向的竞争力方便地进行管理,这可通过调整TELD中的机械应变(模式1调节)或在液体前沿施加额外力(模式2调节)即时实现。此外,TELD可作为逻辑门、应力阀、微流控反应器和集雾器。因此,本文的工作建立了在亲液表面原位和即时操控液流的策略。