Fang Fang, Fu Shan, Lin Jie, Zhu Jia, Dai Zhongyang, Zhou Guobing, Yang Zhen
Institute of Advanced Materials (IAM), State-Province Joint Engineering Laboratory of Zeolite Membrane Materials, College of Chemistry and Chemical Engineering, Jiangxi Normal University, Nanchang 330022, People's Republic of China.
College of Chemistry and Chemical Engineering, Jiangxi Normal University, Nanchang 330022, People's Republic of China.
Langmuir. 2022 Jun 14;38(23):7300-7311. doi: 10.1021/acs.langmuir.2c00825. Epub 2022 May 30.
With the increasing importance of nanoconfined water in various heterostructures, it is quite essential to clarify the influence of nanoconfinement on the unique properties of water molecules in the pivotal heterojunction. In this work, we reported a series of classical molecular dynamics (MD) simulations to explore nanoconfined water in the subnanometer-sized and nanometer-sized heterostructures by adjusting one-dimensional (1-D) carbon nanotubes with different diameters and two-dimensional (2-D) graphene sheets with different interlayer distances. Our simulation results demonstrated that water molecules in the 1-D/2-D heterojunction show an obvious structural rearrangement associated with the remarkable breaking and formation of hydrogen bonds (HBs), and such rearrangements in the subnanometer-sized systems are much more pronounced than those in the nanometer-sized ones. When water molecules in the 1-D/2-D heterojunctions migrate from 2-D to 1-D confinements, the ordered multi-layer structure in the 2-D confinement are completely destroyed and then transform into different circular HB networks near the nanotube orifice for better connecting to the single-file or helical HB network in the 1-D nanotubes. Furthermore, water molecules in the 1-D/2-D heterojunctions can form stronger HBs with those water molecules further away from the 1-D confinement, leading to an asymmetrical orientational distribution near the orifice. More importantly, our comparison results revealed that the 1-D confinement plays a more important role than the 2-D confinement in determining both the structures and dynamics of water molecules in the 1-D/2-D heterojunction.
随着纳米限域水在各种异质结构中的重要性日益增加,阐明纳米限域对关键异质结中水分子独特性质的影响至关重要。在这项工作中,我们报道了一系列经典分子动力学(MD)模拟,通过调整不同直径的一维(1-D)碳纳米管和不同层间距的二维(2-D)石墨烯片,来探索亚纳米尺寸和纳米尺寸异质结构中的纳米限域水。我们的模拟结果表明,1-D/2-D异质结中的水分子表现出明显的结构重排,伴随着氢键(HBs)的显著断裂和形成,并且亚纳米尺寸系统中的这种重排比纳米尺寸系统中的更为明显。当1-D/2-D异质结中的水分子从2-D限域迁移到1-D限域时,2-D限域中的有序多层结构被完全破坏,然后在纳米管口附近转变为不同的圆形HB网络,以便更好地连接到1-D纳米管中的单链或螺旋HB网络。此外,1-D/2-D异质结中的水分子可以与远离1-D限域的水分子形成更强的HBs,导致管口附近的取向分布不对称。更重要的是,我们的比较结果表明,在决定1-D/2-D异质结中水分子的结构和动力学方面,1-D限域比2-D限域起着更重要的作用。