Sheng Zhizhi, Wang Honglong, Tang Yongliang, Wang Miao, Huang Lizhi, Min Lingli, Meng Haiqiang, Chen Songyue, Jiang Lei, Hou Xu
State Key Laboratory of Physical Chemistry of Solid Surface, College of Chemistry and Chemical Engineering, Xiamen University, Xiamen 361005, China.
Collaborative Innovation Center of Chemistry for Energy Materials, Xiamen University, Xiamen 361005, China.
Sci Adv. 2018 Feb 9;4(2):eaao6724. doi: 10.1126/sciadv.aao6724. eCollection 2018 Feb.
The development of membrane technology is central to fields ranging from resource harvesting to medicine, but the existing designs are unable to handle the complex sorting of multiphase substances required for many systems. Especially, the dynamic multiphase transport and separation under a steady-state applied pressure have great benefits for membrane science, but have not been realized at present. Moreover, the incorporation of precisely dynamic control with avoidance of contamination of membranes remains elusive. We show a versatile strategy for creating elastomeric microporous membrane-based systems that can finely control and dynamically modulate the sorting of a wide range of gases and liquids under a steady-state applied pressure, nearly eliminate fouling, and can be easily applied over many size scales, pressures, and environments. Experiments and theoretical calculation demonstrate the stability of our system and the tunability of the critical pressure. Dynamic transport of gas and liquid can be achieved through our gating interfacial design and the controllable pores' deformation without changing the applied pressure. Therefore, we believe that this system will bring new opportunities for many applications, such as gas-involved chemical reactions, fuel cells, multiphase separation, multiphase flow, multiphase microreactors, colloidal particle synthesis, and sizing nano/microparticles.
膜技术的发展对于从资源采集到医学等众多领域至关重要,但现有的设计无法处理许多系统所需的多相物质的复杂分选。特别是,在稳态施加压力下的动态多相传输和分离对膜科学具有很大益处,但目前尚未实现。此外,将精确的动态控制与避免膜污染相结合仍然难以实现。我们展示了一种通用策略,用于创建基于弹性体微孔膜的系统,该系统可以在稳态施加压力下精细控制并动态调节多种气体和液体的分选,几乎消除污垢,并且可以轻松应用于许多尺寸规模、压力和环境。实验和理论计算证明了我们系统的稳定性以及临界压力的可调性。通过我们的门控界面设计和可控的孔变形,可以在不改变施加压力的情况下实现气体和液体的动态传输。因此,我们相信该系统将为许多应用带来新机遇,例如涉及气体的化学反应、燃料电池、多相分离、多相流、多相微反应器、胶体颗粒合成以及纳米/微粒尺寸测定。