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具有周期性气体传输的自振荡液体门控膜

Self-Oscillating Liquid Gating Membranes with Periodic Gas Transport.

作者信息

Xu Xue, Liu Jing, Cao Min, Zhang Jian, Huang Xinlu, Hou Xu

机构信息

State Key Laboratory of Physical Chemistry of Solid Surfaces, College of Chemistry and Chemical Engineering, Xiamen University, Xiamen 361005, China.

Fujian Provincial Key Laboratory for Soft Functional Materials Research, Research Institute for Biomimetics and Soft Matter, College of Physical Science and Technology, Xiamen University, Xiamen 361005, China.

出版信息

Membranes (Basel). 2022 Jun 23;12(7):642. doi: 10.3390/membranes12070642.

Abstract

Liquid gating membranes with molecular-level smooth liquid lining layers break through the limitations of traditional porous membrane materials in gas transport control. Owing to the stable, self-healing, and reconfigurable properties, liquid gating membranes have shown wide application prospects in microfluidics, intelligent valves, chemical reactions, and beyond. Here, we develop a periodic gas transport control system based on the self-oscillating liquid gating membrane. Under continuous gas injection, the gas-liquid interface is reversibly deformed, enabling self-oscillating behavior for discontinuous and periodic gas transport without the need for any complex external changes to the original system. Meanwhile, our experimental analysis reveals that the periodic time and periodic gas release in the system can be regulated. Based on the cycle stability of the system, we further demonstrate the controllability of the system for periodic droplet manipulation in microfluidics. Looking forward, it will offer new opportunities for various applications, such as pneumatic robots, gas-involved chemical reactions, droplet microfluidics, and beyond.

摘要

具有分子级光滑液体衬里层的液体门控膜突破了传统多孔膜材料在气体传输控制方面的局限性。由于其具有稳定、自愈和可重构的特性,液体门控膜在微流体、智能阀门、化学反应等领域展现出了广阔的应用前景。在此,我们基于自振荡液体门控膜开发了一种周期性气体传输控制系统。在持续注入气体的情况下,气液界面会发生可逆变形,从而实现不连续和周期性气体传输的自振荡行为,而无需对原始系统进行任何复杂的外部改变。同时,我们的实验分析表明,系统中的周期时间和周期性气体释放是可以调节的。基于系统的循环稳定性,我们进一步证明了该系统在微流体中对周期性液滴操纵的可控性。展望未来,它将为各种应用提供新的机会,如气动机器人、涉及气体的化学反应、液滴微流体等领域。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f635/9316610/465e5eabbe0d/membranes-12-00642-g001.jpg

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