论文标题
场引起的双轴列液晶的动力学板状颗粒
Dynamics in field-induced biaxial nematic liquid crystals of board-like particles
论文作者
论文摘要
双轴列($ n_b $)液晶已被认为是具有新颖的电光特性和更快切换时间的下一代展示的有前途的候选人。尽管在分子尺度上,其存在仍在争论中,但由理论和模拟支持的实验证据已明确证明,在特定条件下,合适的胶体颗粒确实可以形成$ N_B $的流体。尽管这一发现对$ N_B $液晶的相位行为的表征引起了广泛的兴趣,但注意力的关注大大投入了研究其运输特性的研究。为了弥合这一差距,通过动态蒙特卡洛模拟,我们研究了包括单分散硬核的场诱导的$ n_b $相的平衡动力学。特别是,我们计算了多种各向异性范围内的长期自扩散系数,跨越巨大的几何形状。此外,我们已经将这些扩散率与关闭外场后的扩散性进行了比较,这些扩散率是在相同密度下的热力学稳定的各向同性或单轴列阶段中测量的。我们的结果表明,虽然双轴神灵的岩质立方体比在较少有序的流体中散射的速度要快得多,但我们并没有在高包装分数下观察到会增加的立方体增加。我们表明,这些变化很可能是由于垂直于列前主管的轴冻结的田间引起的冻结,以及所得$ N_B $相位的订购订购的大幅增加。
Biaxial nematic ($N_B$) liquid crystals have been indicated as promising candidates for the design of next-generation displays with novel electro-optical properties and faster switching times. While at the molecular scale their existence is still under debate, experimental evidence, supported by theory and simulation, has unambiguously proved that suitable colloidal particles can indeed form $N_B$ fluids under specific conditions. While this discovery has sparked a widespread interest in the characterisation of the phase behaviour of $N_B$ liquid crystals, significantly less attention has been devoted to the study of their transport properties. To bridge this gap, by Dynamic Monte Carlo simulations we have investigated the equilibrium dynamics of field-induced $N_B$ phases comprising monodisperse hard cuboids. In particular, we calculated the long-time self-diffusion coefficients of cuboids over a wide range of anisotropies, spanning prolate to oblate geometries. Additionally, we have compared these diffusivities with those that, upon switching the external field off, are measured in the thermodynamically-stable isotropic or uniaxial nematic phases at the same density. Our results indicate that while prolate cuboids diffuse significantly faster in biaxial nematics than in less ordered fluids, we do not observe such an increase with oblate cuboids at high packing fractions. We show that these changes are most likely due to the field-induced freezing of the axes perpendicular to the nematic director, along with a substantial increase in the ordering of the resulting $N_B$ phase.