Zhu Huajian, Xu Yinxiang, Yan Yishu, Xu Junbo, Yang Chao
State Key Laboratory of Materials-Oriented Chemical Engineering, College of Chemical Engineering, Nanjing Tech University, Nanjing 210009, China.
CAS Key Laboratory of Green Process and Engineering, Institute of Process Engineering, Chinese Academy of Sciences, Beijing 100190, China.
Langmuir. 2020 Nov 17;36(45):13613-13620. doi: 10.1021/acs.langmuir.0c02450. Epub 2020 Nov 4.
Hydration plays an important role in the diffusion and sieving of ions within nanochannels. However, it is hard to quantitatively analyze the contribution of hydration to the diffusion rates due to the complex hydrogen-bond and charge interactions between atoms. Here, we quantitatively investigated the interfacial diffusion rates of a single hydrated ion with different number of water molecules on graphene surface through molecular dynamics simulation. The simulation results show the ballistic diffusion mode by analyzing the mean-square displacement, and the diffusion rates change nonmonotonically with the hydration number. The potential energy profiles with the changing position of the hydrated ion on graphene surface were further analyzed, which shows the dominant factor for interfacial diffusion changing from ion-graphene interaction to water-graphene interaction as the number of water molecules increases. Besides, it was found that the surface hydrophilicity weakened the influence of hydration number on the diffusion rates of hydrated ion. Finally, the diffusion properties of different hydrated ions on graphene surface were investigated, and the hydrated Li, Na, and K containing three, four, and five water molecules, respectively, show the fastest diffusion rate. This work demonstrates the interfacial diffusion behavior and mechanism of hydrated ions at the molecular level, which can provide valuable guidance in nanosensors, seawater desalination, and other hydrated ion-related fields.
水合作用在纳米通道内离子的扩散和筛分过程中起着重要作用。然而,由于原子之间复杂的氢键和电荷相互作用,很难定量分析水合作用对扩散速率的贡献。在此,我们通过分子动力学模拟定量研究了单个水合离子在石墨烯表面上不同水分子数时的界面扩散速率。模拟结果通过分析均方位移显示出弹道扩散模式,并且扩散速率随水合数呈非单调变化。进一步分析了水合离子在石墨烯表面位置变化时的势能分布,结果表明随着水分子数增加,界面扩散的主导因素从离子 - 石墨烯相互作用转变为水 - 石墨烯相互作用。此外,发现表面亲水性减弱了水合数对水合离子扩散速率的影响。最后,研究了不同水合离子在石墨烯表面的扩散特性,分别含有三个、四个和五个水分子的水合锂、钠和钾显示出最快的扩散速率。这项工作在分子水平上展示了水合离子的界面扩散行为和机制,可为纳米传感器、海水淡化及其他与水合离子相关的领域提供有价值的指导。