Zimmerli Urs, Gonnet Pedro G, Walther Jens H, Koumoutsakos Petros
Institute of Computational Science, ETH Zürich, Switzerland.
Nano Lett. 2005 Jun;5(6):1017-22. doi: 10.1021/nl0503126.
We conduct molecular dynamics simulations to study the effect of the curvature induced static dipole moment of small open-ended single-walled carbon nanotubes (CNTs) immersed in water. This dipole moment generates a nonuniform electric field, changing the energy landscape in the CNT and altering the water conduction process. The CNT remains practically filled with water at all times, whereas intermittent filling is observed when the dipole term is not included. In addition, the dipole moment induces a preferential orientation of the water molecules near the end regions of the nanotube, which in turn causes a reorientation of the water chain in the middle of the nanotube. The most prominent feature of this reorientation is an L-defect in the chain of water molecules inside the CNT. The analysis of the water energetics and structural characteristics inside and in the vicinity of the CNT helps to identify the role of the dipole moment and to suggest possible mechanisms for controlled water and proton transport at the nanoscale.
我们进行分子动力学模拟,以研究浸没在水中的小开口单壁碳纳米管(CNT)的曲率诱导静偶极矩的影响。该偶极矩产生不均匀电场,改变了碳纳米管内的能量分布并改变了水的传导过程。碳纳米管实际上始终充满水,而当不包括偶极项时则观察到间歇性填充。此外,偶极矩在纳米管端部区域附近诱导水分子的优先取向,这进而导致纳米管中部水链的重新取向。这种重新取向最显著的特征是碳纳米管内水分子链中的L缺陷。对碳纳米管内部及其附近的水能量学和结构特征的分析有助于确定偶极矩的作用,并提出在纳米尺度上控制水和质子传输的可能机制。