Li Shuang, Zhang Xinke, Su Jiaye
MIIT Key Laboratory of Semiconductor Microstructure and Quantum Sensing, and Department of Applied Physics, Nanjing University of Science and Technology, Nanjing 210094, China.
ACS Appl Mater Interfaces. 2024 Jan 17;16(2):2659-2671. doi: 10.1021/acsami.3c16592. Epub 2024 Jan 2.
Improving the desalination performance of membranes is always in the spotlight of scientific research; however, Janus channels with polarized surface charge as nanofiltration membranes are still unexplored. In this work, using molecular dynamics simulations, we demonstrate that Janus graphene oxide (GO) channels with appropriate geometry and surface charge can serve as highly efficient nanofiltration membranes. We observe that the water permeability of symmetric Janus GO channels is significantly superior to that of asymmetric channels without sacrificing much ion rejection, owing to weakened ion blockage and electrostatic effects. Furthermore, in symmetric Janus GO channels, the transport of water and ions is sensitive to the charge polarity of the channel inner surface, which is realized by tuning the ratio of cationic and anionic functionalization. Specifically, with the increase in cationic functionalization, the water flux decreases monotonously, while ion rejection displays an interesting maximum behavior that indicates desalination optimization. Moreover, the trade-off between water permeability and ion rejection suggests that the Janus GO channels have an excellent desalination potential and are highly tunable according to the specific water treatment requirements. Our work sheds light on the key role of channel geometry and charge polarity in the desalination performance of Janus GO channels, which paves the way for the design of novel desalination devices.
提高膜的脱盐性能一直是科学研究的热点;然而,具有极化表面电荷的Janus通道作为纳滤膜仍未被探索。在这项工作中,我们使用分子动力学模拟表明,具有适当几何形状和表面电荷的Janus氧化石墨烯(GO)通道可以作为高效的纳滤膜。我们观察到,对称Janus GO通道的水渗透率明显优于不对称通道,且不会牺牲太多离子截留率,这是由于离子堵塞和静电效应减弱所致。此外,在对称Janus GO通道中,水和离子的传输对通道内表面的电荷极性敏感,这可以通过调节阳离子和阴离子功能化的比例来实现。具体而言,随着阳离子功能化程度的增加,水通量单调下降,而离子截留率则呈现出有趣的最大值行为,这表明脱盐效果达到最佳。此外,水渗透率和离子截留率之间的权衡表明,Janus GO通道具有出色的脱盐潜力,并且可以根据特定的水处理要求进行高度调节。我们的工作揭示了通道几何形状和电荷极性在Janus GO通道脱盐性能中的关键作用,为新型脱盐设备的设计铺平了道路。