Abstract

The ability of membrane technologies to dynamically tune the transport behavior for gases and liquids is critical for their applications. Although various methods have been developed to improve membrane success, tradeoffs still exist among their properties, such as permeability, selectivity, fouling resistance, and stability, which can greatly affect the performance of membranes. Existing elastomeric membrane designs can provide antifracture properties and flexibility; however, these designs still face certain challenges, such as low tensile strength and reliability. Additionally, researchers have not yet thoroughly developed membranes that can avoid fouling issues while realizing precise dynamic control over the transport substances. In this study, we show a versatile strategy for preparing graphene oxide-reinforced elastomeric liquid gating membranes that can finely modulate and dynamically tune the sorting of a wide range of gases and liquids under constant applied pressures. Moreover, the produced membranes exhibit antifouling properties and are adaptable to different length scales, pressures, and environments. The filling of graphene oxide in the thermoplastic polyurethane matrix enhances the composites through hydrogen bonds. Experiments and theoretical calculations are carried out to demonstrate the stability of our system. Our membrane exhibits good stretchability, recovery, and durability due to the elastic nature of the solid matrix and dynamic nature of the gating liquid. Dynamic control over the transport of gases and liquids is achieved through our optimized interfacial design and controllable pore deformation, which is induced by mechanical stimuli. Our strategy will create new opportunities for many applications, such as gas-involved chemical reactions, multiphase separation, microfluidics, multiphase microreactors, and particulate material synthesis.

Highlights

  • The ability to dynamically tune the gating and transport behavior of gases and liquids is useful in the operation of membrane-based systems for various applications, such as multiphase separation[1,2,3,4], drug delivery[5], and chemical reactions[6]

  • With a laser cutting technique, the porous structures on the membranes can be carefully made for fabricating the graphene oxide (GO)/thermoplastic polyurethane (TPU) elastomeric porous membrane (GO/TPU EPM) (Fig. S1)

  • The infused gating liquid can have a random shape that adjusts to the applied pressure, thereby providing an ideal dynamic material to solid porous membranes for regulating gas/liquid transport

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Summary

Introduction

The ability to dynamically tune the gating and transport behavior of gases and liquids is useful in the operation of membrane-based systems for various applications, such as multiphase separation[1,2,3,4], drug delivery[5], and chemical reactions[6]. We demonstrate the design strategy of the GO/TPU LGEPM from material preparation and interfacial properties to the working principle for tunable gas/ liquid transport. The critical pressures of the transport substances can be dynamically controlled through deformation by stretching and releasing the GO/TPU LGEPM (Fig. 1).

Results
Conclusion
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