Won Chang Y, Aluru N R
Department of Mechanical Science and Engineering, Beckman Institute for Advanced Science and Technology, University of Illinois at Urbana-Champaign, Urbana, Illinois 61801, USA.
J Am Chem Soc. 2008 Oct 15;130(41):13649-52. doi: 10.1021/ja803245d. Epub 2008 Sep 20.
Boron nitride nanotubes (BNNTs) have been reported to possess superior water permeation properties. In this work, using molecular dynamics simulations with partial charges, capturing BNNT polarization effects obtained from quantum calculations, we found that Stone-Wales (SW) defects in a (5,5) BNNT result in phase transition of water, i.e., a transition between liquid-like phase and vapor-like phase was observed. The 90 degree rotation of the B-N bond, SW transformation, in an SW-defective (5,5) BNNT results in breaking of hydrogen bonding with neighboring water molecules and leads to the existence of a vapor-like phase near the SW defect. Water transport rate was evaluated by measuring translocation time. Water in an SW-defective (5,5) BNNT has fewer translocation events, longer translocation time, and a higher axial diffusion coefficient compared to water in a nondefective (5,5) BNNT.
据报道,氮化硼纳米管(BNNTs)具有优异的水渗透性能。在这项工作中,我们使用带有部分电荷的分子动力学模拟,捕捉从量子计算中获得的BNNT极化效应,发现(5,5)BNNT中的斯通-威尔士(SW)缺陷会导致水的相变,即观察到类液相和类气相之间的转变。在有SW缺陷的(5,5)BNNT中,B-N键的90度旋转(SW转变)会导致与相邻水分子的氢键断裂,并导致在SW缺陷附近存在类气相。通过测量转运时间来评估水的传输速率。与无缺陷的(5,5)BNNT中的水相比,有SW缺陷的(5,5)BNNT中的水具有更少的转运事件、更长的转运时间和更高的轴向扩散系数。