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原子级薄纳米多孔石墨烯受限环境下纳米流体传输与质量分离的新进展

Emerging Advances around Nanofluidic Transport and Mass Separation under Confinement in Atomically Thin Nanoporous Graphene.

作者信息

Guo Liping, Wu Ningran, Zhang Shengping, Zeng Haiou, Yang Jing, Han Xiao, Duan Hongwei, Liu Yuancheng, Wang Luda

机构信息

National Key Laboratory of Advanced Micro and Nano Manufacture Technology, School of Integrated Circuits, Peking University, Beijing, 100871, China.

Beijing Advanced Innovation Center for Integrated Circuits, Beijing, 100871, China.

出版信息

Small. 2024 Nov;20(44):e2404087. doi: 10.1002/smll.202404087. Epub 2024 Jul 19.

Abstract

Membrane separation stands as an environmentally friendly, high permeance and selectivity, low energy demand process that deserves scientific investigation and industrialization. To address intensive demand, seeking appropriate membrane materials to surpass trade-off between permeability and selectivity and improve stability is on the schedule. 2D materials offer transformational opportunities and a revolutionary platform for researching membrane separation process. Especially, the atomically thin graphene with controllable porosity and structure, as well as unique properties, is widely considered as a candidate for membrane materials aiming to provide extreme stability, exponentially large selectivity combined with high permeability. Currently, it has shown promising opportunities to develop separation membranes to tackle bottlenecks of traditional membranes, and it has been of great interest for tremendously versatile applications such as separation, energy harvesting, and sensing. In this review, starting from transport mechanisms of separation, the material selection bank is narrowed down to nanoporous graphene. The study presents an enlightening overview of very recent developments in the preparation of atomically thin nanoporous graphene and correlates surface properties of such 2D nanoporous materials to their performance in critical separation applications. Finally, challenges related to modulation and manufacturing as well as potential avenues for performance improvements are also pointed out.

摘要

膜分离是一种环境友好、渗透率高、选择性好、能源需求低的过程,值得进行科学研究和工业化推广。为了满足强烈的需求,寻找合适的膜材料以克服渗透率和选择性之间的权衡并提高稳定性已提上日程。二维材料为研究膜分离过程提供了变革性机遇和革命性平台。特别是,具有可控孔隙率和结构以及独特性能的原子级薄石墨烯,被广泛认为是一种膜材料候选物,旨在提供极高的稳定性、指数级大的选择性以及高渗透率。目前,开发分离膜以解决传统膜的瓶颈已展现出广阔前景,并且它在诸如分离、能量收集和传感等极其广泛的应用中引起了极大兴趣。在本综述中,从分离的传输机制出发,将材料选择范围缩小到纳米多孔石墨烯。该研究对原子级薄纳米多孔石墨烯制备方面的最新进展进行了具有启发性的概述,并将此类二维纳米多孔材料的表面性质与其在关键分离应用中的性能相关联。最后,还指出了与调制和制造相关的挑战以及性能改进的潜在途径。

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