Research Center for Membrane and Film Technology, Kobe University, 1-1 Rokkodai, Nada, Kobe, 657-8501, Japan.
State Key Laboratory of Materials-Oriented Chemical Engineering, College of Chemical Engineering, Nanjing Tech University, 30 Puzhu Road (S), Nanjing, 211816, China.
Nat Commun. 2023 Feb 23;14(1):1016. doi: 10.1038/s41467-023-36716-5.
Nanochannels in laminated graphene oxide nanosheets featuring confined mass transport have attracted interest in multiple research fields. The use of nanochannels for reverse osmosis is a prospect for developing next-generation synthetic water-treatment membranes. The robustness of nanochannels under high-pressure conditions is vital for effectively separating water and ions with sub-nanometer precision. Although several strategies have been developed to address this issue, the inconsistent response of nanochannels to external conditions used in membrane processes has rarely been investigated. In this study, we develop a robust interlayer channel by balancing the associated chemistry and confinement stability to exclude salt solutes. We build a series of membrane nanochannels with similar physical dimensions but different channel functionalities and reveal their divergent deformation behaviors under different conditions. The deformation constraint effectively endows the nanochannel with rapid deformation recovery and excellent ion exclusion performance under variable pressure conditions. This study can help understand the deformation behavior of two-dimensional nanochannels in pressure-driven membrane processes and develop strategies for the corresponding deformation constraints regarding the pore wall and interior.
层状氧化石墨烯纳米片中的纳米通道具有受限的传质特性,引起了多个研究领域的关注。纳米通道在反渗透中的应用是开发下一代合成水处理膜的一个前景。纳米通道在高压条件下的稳定性对于以亚纳米精度有效分离水和离子至关重要。尽管已经开发了几种策略来解决这个问题,但很少研究膜过程中纳米通道对外界条件的不一致响应。在这项研究中,我们通过平衡相关化学和限制稳定性来开发一种稳健的层间通道,以排除盐溶质。我们构建了一系列具有相似物理尺寸但不同通道功能的膜纳米通道,并揭示了它们在不同条件下的不同变形行为。变形约束有效地赋予了纳米通道在可变压力条件下快速的变形恢复和优异的离子排斥性能。这项研究有助于理解二维纳米通道在压力驱动的膜过程中的变形行为,并开发针对孔壁和内部的相应变形约束策略。