Zhou Xin, Chen Hu, Iwamoto Mitsumasa
Department of Physical Electronics, Tokyo Institute of Technology, O-Okayama 2-12-1, Meguro-ku, Tokyo 152-8552, Japan.
J Chem Phys. 2004 Mar 15;120(11):5322-6. doi: 10.1063/1.1647517.
Based on a constant-pressure Monte Carlo molecular simulation, we have studied orientationally ordered transitions of small anisotropic molecules confined in two parallel hard walls. These molecules are modeled by the hard Gaussian overlap model. The molecular elongations of the chosen molecules are so small that the molecules cannot form stable liquid-crystal (LC) phases in the bulk. But in the slit pores, we found, while the distance between two walls of the pores decreases to the molecular scale, an orientationally ordered phase can form. It shows that even hard confining surfaces favor the alignment of the small anisotropic molecules. Thus we conclude that the required molecular elongation for forming LC phases will decrease in confinement. Our results indicate that some non-LC small molecules may form stable LC phases due to the inducement of confining surfaces.
基于恒压蒙特卡罗分子模拟,我们研究了限制在两个平行硬壁之间的小各向异性分子的取向有序转变。这些分子由硬高斯重叠模型建模。所选分子的分子伸长率非常小,以至于这些分子在本体中无法形成稳定的液晶(LC)相。但在狭缝孔中,我们发现,当孔的两壁之间的距离减小到分子尺度时,可以形成取向有序相。这表明即使是硬限制表面也有利于小各向异性分子的排列。因此我们得出结论,形成LC相所需的分子伸长率在受限情况下会降低。我们的结果表明,一些非LC小分子可能由于限制表面的诱导而形成稳定的LC相。