Centre for Liquid Crystal Research, P.O. Box 1329, Jalahalli, Bangalore 560 013, India.
J Phys Chem B. 2010 Jan 14;114(1):10-21. doi: 10.1021/jp9058802.
We report the results of investigations on the anisotropic electrohydrodynamic states arising in a highly conducting, planarly aligned, bent-core nematic liquid crystal driven by ac fields of frequency f in the range from 10 Hz to 1 MHz. Pattern morphologywise, two f regimes are distinguished. The low-f regime, wherein the primary bifurcation is to a state of periodic longitudinal stripes (LS), extends to an unprecedentedly large f, in the range 150-550 kHz, depending on the temperature T. This is followed by the high-f regime wherein periodic normal stripes (NS) constitute the primary instability. Both instabilities involve predominant director modulations and streamlines in the layer plane. The transitional frequency between the two regimes is linear in temperature. The curve V(c)(f) shows a nonlinear increase for the LS state and decrease for the NS state. V(c)(T) is an ever increasing curve close to the nematic-isotropic point for both states. The wavenumber of LS varies directly as V, and that of NS shows nearly the same behavior. The pattern period versus f is increasing for LS but decreasing for NS. Both instability states exhibit complex, light-polarization-dependent lens action. Well above the threshold, disclination loops of regular geometry appear along the stripes. They drift in a coordinated manner along the flow lines. At very high voltages, the instability turns strongly time dependent. The current models of anisotropic convection based on static electrical parameters fail to account for the observed instabilities.
我们报告了在由频率为 f 的交流场驱动的高度导电、平面排列、弯曲核心向列液晶中出现的各向异性电动力学状态的研究结果,f 的范围为 10 Hz 至 1 MHz。从形态学上看,有两种 f 区。在低 f 区,主要分岔是到周期性纵向条纹(LS)状态,延伸到前所未有的大 f 区,范围为 150-550 kHz,取决于温度 T。随后是高 f 区,其中周期性正常条纹(NS)构成主要不稳定性。这两种不稳定性都涉及主导的指向器调制和流线在层平面中。两种状态之间的过渡频率随温度呈线性变化。曲线 V(c)(f)显示 LS 状态呈非线性增加,NS 状态呈非线性减少。V(c)(T)对于两种状态都是接近向列-各向同性点的不断增加的曲线。LS 的波数与 V 成正比,NS 的波数几乎具有相同的行为。LS 的图案周期与 f 呈增加趋势,而 NS 的图案周期则呈下降趋势。两种不稳定性状态都表现出复杂的、依赖于光偏振的透镜作用。在阈值以上,规则几何形状的扭曲环出现在条纹上。它们沿着流线以协调的方式漂移。在非常高的电压下,不稳定性变得强烈地依赖于时间。基于静态电参数的各向异性对流的现有模型无法解释观察到的不稳定性。