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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Preparation of nanoporous graphene oxide by nanocrystal-masked etching: toward a nacre-mimetic metal-organic framework molecular sieving membrane
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Preparation of nanoporous graphene oxide by nanocrystal-masked etching: toward a nacre-mimetic metal-organic framework molecular sieving membrane

机译:纳米晶体掩模蚀刻制备纳米多孔石墨烯氧化物:朝向模拟金属 - 有机骨架分子筛分膜

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摘要

Ultrathin and robust metal-organic framework (MOF) molecular sieving membranes with high-flux and high-selectivity have shown great potential for low-energy gas separation. Here we report a controllable MOF nanocrystal-masked plasma etching method for forming evenly distributed mesopores on graphene oxide (GO) nanosheets. The resulting mesoporous GO/MOF nanosheets are used to synthesize an ultrathin polycrystalline MOF membrane with well-aligned mesoporous GO (MGO) nanosheets via a nacre-mimetic "assembly-and-intergrowth" approach. This is achieved by assembling the two-dimensional (2D) porous materials (e.g. hybrid MOF/MGO nanosheets) into a laminate scaffold matrix, followed by the intergrowth of MOF crystals into this matrix. Such an approach enables the realization of homogeneous dispersion and alignment, strong interfacial binding, and interpenetration of porous GO nanosheets within the ultrathin MOF polycrystalline layer. In particular, this layered MOF/MGO membrane displays the improvement of the homogeneity in mechanical deformation and fracture resistance as compared to the polycrystalline MOF membrane, as shown by nanoindentation tests. In addition, the obtained MOF membrane with an ultrathin thickness of 430 nm shows excellent hydrogen separation performance (H-2/C3H8 selectivity as high as 2409 with H-2 permeances of 1.17 x 10(-6) mol m(-2) s(-1) Pa-1). Such a simple etching and bioinspired growth strategy could be potentially employed to produce other nanoporous 2D materials and nacre-mimetic polycrystalline films with unique properties for a range of advanced separation applications.
机译:具有高通量和高选择性的超薄和鲁棒金属 - 有机框架(MOF)分子筛膜具有很大的低能气体分离潜力。在这里,我们报告了一种可控的MOF纳米晶体掩蔽等离子体蚀刻等离子体蚀刻方法,用于在氧化铟烯氧化物(GO)纳米片上形成均匀分布的中孔。所得的培养孔GO / MOF纳米片用于合成具有良好对准的介孔GO(MgO)纳米片的超薄多晶MOF膜,通过粗糙的“组装和融合”方法。这是通过将二维(2D)多孔材料(例如杂合MOF / MgO纳米片)组装成层压状支架基质,然后将MOF晶体的晶体分成该基质来实现。这种方法能够实现均匀的分散和对准,对近孔纳米片内的均匀分散和对准,强孔纳米片内的互相渗透。特别地,与多晶MOF膜相比,该层状MOF / MgO膜显示出机械变形和裂缝抗性的均匀性的改善,如纳米狭窄试验所示。此外,所获得的具有超薄厚度为430nm的MOF膜,显示出优异的氢分离性能(H-2 / C3H8选择性高达2409,H-2渗透率为1.17×10(-6)摩尔M(-2)s (-1)PA-1)。这种简单的蚀刻和生物悬浮的生长策略可以潜在地用于生产其他纳米多孔2D材料和珍珠素模拟的多晶膜,具有一系列先进的分离应用。

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