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首页> 外文期刊>ACS applied materials & interfaces >Selective Etching of Graphene Membrane Nanopores: From Molecular Sieving to Extreme Permeance
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Selective Etching of Graphene Membrane Nanopores: From Molecular Sieving to Extreme Permeance

机译:石墨烯膜纳米孔的选择性蚀刻:从分子筛分到极端渗透率

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摘要

Two-dimensional materials are the essential building blocks of breakthrough membrane technologies due to minimal permeation barriers across atomically thin pores. Tunable pore size fabrication combined with independently controlled pore number density is necessary for outstanding performance but remains a challenge. There is a great need for parallel, upscalable methods that can control pore size from sub-nm to >5 nm, a pore size range required for membranes with effective molecular separation. Here we report a dry, facile, and scalable process introducing atomic defects by design, followed by selective etching of graphene edge atoms able to controllably expand the nanopore dimensions from sub-nm to 5 nm. The attainable average pore sizes at 10(15) m(-2) pore density promise applicability to various separation applications. We investigate the gas permeation and separation mechanisms, finding that these membranes display molecular sieving (H-2/CH4 separation factor = 9.3; H-2 permeance = 3370 gas permeation units (GPU)) and reveal the presence of interweaved transport phenomena of pore chemistry, surface flow, and gas molecule momentum transfer. We observe the smooth transition from molecular sieving to effusion at unprecedented permeance (H-2/CH4 separation factor = 3.7; H-2 permeance = 10(7) GPU). Our scalable graphene membrane fabrication approach in combination with sub-5 nm pores opens a new route employing 2D membranes to study gas transport and effectively paving the way to industrial applications.
机译:由于原子上薄孔的最小渗透屏障,二维材料是突破膜技术的基本构建块。可调谐孔径制造结合独立控制的孔数密度对于出色的性能来说是必要的,但仍然是一个挑战。对可以控制孔径从亚NM至> 5nm的平行,上型方法,膜具有有效分子分离所需的孔径范围。在这里,我们通过设计报告干燥,容易和可扩展的过程,然后通过设计引入原子缺陷,然后选择性地蚀刻石墨烯边缘原子,能够可控制地扩展纳米孔尺寸,从子NM至5nm。可达到的平均孔径为10(15)(-2)孔密度承诺适用于各种分离应用。我们研究了气体渗透和分离机制,发现这些膜展示了分子筛(H-2 / CH 4分离因子= 9.3; H-2 Permeance = 3370天然气渗透单元(GPU))并显示出孔的相互交通现象的存在化学,表面流动和气体分子动量转移。我们观察到在前所未有的渗透(H-2 / CH4分离因子= 3.7; H-2 Permeance = 10(7)GPU)下的分子筛分从分子筛分的平滑过渡。我们可伸缩的石墨烯膜制造方法与Sub-5 NM孔组合开启了采用2D膜的新途径,以研究气体运输,并有效地铺平到工业应用的方式。

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