Dewar Alastair, Camp Philip J
School of Chemistry, The University of Edinburgh, West Mains Road, Edinburgh EH9 3JJ, United Kingdom.
J Chem Phys. 2005 Nov 1;123(17):174907. doi: 10.1063/1.2062007.
The effects of dipolar interactions and molecular flexibility on the structure and phase behavior of bent-core molecular fluids are studied using Monte Carlo computer simulations. Some calculations of flexoelectric coefficients are also reported. The rigid cores of the model molecules consist of either five or seven soft spheres arranged in a "V" shape with external bend angle gamma. With purely repulsive sphere-sphere interactions and gamma = 0 degrees (linear molecules) the seven-sphere model exhibits isotropic, uniaxial nematic, and untilted and tilted smectic phases. With gamma > or = 20 degrees the untilted smectic phases disappear, while the system with gamma > or = 40 degrees shows a direct tilted smectic-isotropic fluid transition. The addition of electrostatic interactions between transverse dipole moments on the apical spheres is generally seen to reduce the degree of molecular inclination in tilted phases, and destabilizes the nematic and untilted smectic phases of linear molecules. The effects of adding three-segment flexible tails to the ends of five-sphere bent-core molecules are examined using configurational-bias Monte Carlo simulations. Only isotropic and smectic phases are observed. On the one hand, molecular flexibility gives rise to pronounced fluctuations in the smectic-layer structure, bringing the simulated system in better correspondence with real materials; on the other hand, the smectic phase shows almost no tilt. Lastly, the flexoelectric coefficients of various nematic phases--with and without attractive sphere-sphere interactions--are presented. The results are encouraging, but a large computational effort is required to evaluate the appropriate fluctuation relations reliably.
利用蒙特卡罗计算机模拟研究了偶极相互作用和分子柔性对弯曲核分子流体结构和相行为的影响。还报告了一些挠曲电系数的计算结果。模型分子的刚性核由五个或七个软球组成,排列成外部弯曲角为γ的“V”形。在纯排斥的球-球相互作用且γ = 0°(线性分子)时,七球模型呈现各向同性、单轴向列相以及非倾斜和倾斜近晶相。当γ≥20°时,非倾斜近晶相消失,而γ≥40°的体系显示出直接的倾斜近晶相 - 各向同性流体转变。通常可以看到,在顶端球上横向偶极矩之间添加静电相互作用会降低倾斜相中分子的倾斜程度,并使线性分子的向列相和非倾斜近晶相不稳定。使用构型偏倚蒙特卡罗模拟研究了在五球弯曲核分子末端添加三段柔性尾的影响。只观察到各向同性相和近晶相。一方面,分子柔性导致近晶层结构出现明显波动,使模拟体系与实际材料更相符;另一方面,近晶相几乎没有倾斜。最后,给出了各种向列相(有无吸引性球 - 球相互作用)的挠曲电系数。结果令人鼓舞,但需要大量的计算工作来可靠地评估适当的涨落关系。