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Knudsen effusion through polymer-coated three-layer porous graphene membranes

机译:通过聚合物涂覆的三层多孔石墨烯膜进行挥发搏动

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摘要

Graphene membranes have the potential to exceed the permeance and selectivity limits of conventional gas separation membranes. Realizing this potential in practical systems relies on overcoming numerous scalability challenges, such as isolating or sealing permeable defects in macroscopic areas of graphene that can compromise performance and developing methods to create high densities of selective pores over large areas. This study focuses on a centimeter-scale membrane design, where leakage is reduced by substrate selection, permeable polymer film coating, and stacking of three independent layers of graphene, while (selective) pores are created by high density ion bombardment. The three-layer graphene provides high resistance to gas flow, which decreases with ion bombardment and results in selectivity consistent with Knudsen effusion. The results suggest that the permeable pores created in three layer graphene were larger than those required for molecular sieving and that designs based on single layer graphene may lend themselves more easily to molecular sieving of gases.
机译:石墨烯膜具有超过常规气体分离膜的渗透和选择性限制的可能性。在实际系统中实现这种潜力依赖于克服许多可扩展性挑战,例如石墨烯的宏观区域中的隔离或密封可渗透的缺陷,这可能会损害性能和开发方法,以在大面积上产生高密度的选择性孔隙。该研究侧重于厘米型膜设计,其中通过基板选择,可渗透的聚合物膜涂布和三个独立的石墨烯堆叠减少了泄漏,而(选择性)孔通过高密度离子轰击产生。三层石墨烯为气流提供高抗性,其用离子轰击降低,并导致与knudsen积液一致的选择性。结果表明,三层石墨烯中产生的可渗透孔大于分子筛分所需的孔,并且基于单层石墨烯的设计可以更容易地赋予气体分子筛分。

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