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MXene molecular sieving membranes for highly efficient gas separation

机译:MXene分子筛膜可实现高效气体分离

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摘要

Molecular sieving membranes with sufficient and uniform nanochannels that break the permeability-selectivity trade-off are desirable for energy-efficient gas separation, and the arising two-dimensional (2D) materials provide new routes for membrane development. However, for 2D lamellar membranes, disordered interlayer nanochannels for mass transport are usually formed between randomly stacked neighboring nanosheets, which is obstructive for highly efficient separation. Therefore, manufacturing lamellar membranes with highly ordered nanochannel structures for fast and precise molecular sieving is still challenging. Here, we report on lamellar stacked MXene membranes with aligned and regular subnanometer channels, taking advantage of the abundant surface-terminating groups on the MXene nanosheets, which exhibit excellent gas separation performance with H2 permeability >2200 Barrer and H2/CO2 selectivity >160, superior to the state-of-the-art membranes. The results of molecular dynamics simulations quantitatively support the experiments, confirming the subnanometer interlayer spacing between the neighboring MXene nanosheets as molecular sieving channels for gas separation.
机译:具有足够且均匀的纳米通道以打破渗透性-选择性折衷的分子筛膜对于节能气体分离是理想的,并且新兴的二维(2D)材料为膜开发提供了新途径。然而,对于二维层状膜,通常在随机堆叠的相邻纳米片之间形成用于质量传输的无序层间纳米通道,这阻碍了高效分离。因此,制造具有高度有序的纳米通道结构的层状膜以进行快速和精确的分子筛仍然是具有挑战性的。在这里,我们报告了具有对准且规则的亚纳米通道的层状堆叠MXene膜,它利用MXene纳米片上的丰富表面终止基团表现出出色的气体分离性能,H2渗透率> 2200 Barrer和H2 / CO2选择性> 160,优于最新的膜。分子动力学模拟的结果定量地支持了实验,确认了相邻MXene纳米片之间的亚纳米层间间隔作为气体分离的分子筛分通道。

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