Fang Angbo, Qian Tiezheng, Sheng Ping
Department of Physics and the Institute of Nano Science and Technology, Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong, China.
Phys Rev E Stat Nonlin Soft Matter Phys. 2008 Dec;78(6 Pt 1):061703. doi: 10.1103/PhysRevE.78.061703. Epub 2008 Dec 8.
Parallel to the highly successful Ericksen-Leslie hydrodynamic theory for the bulk behavior of nematic liquid crystals (NLCs), we derive a set of coupled hydrodynamic boundary conditions to describe the NLC dynamics near NLC-solid interfaces. In our boundary conditions, translational flux (flow slippage) and rotational flux (surface director relaxation) are coupled according to the Onsager variational principle of least energy dissipation. The application of our boundary conditions to the truly bistable pi -twist NLC cell reveals a complete picture of the dynamic switching processes. It is found that the thus far overlooked translation-rotation dissipative coupling at solid surfaces can accelerate surface director relaxation and enhance the flow rate. This can be utilized to improve the performance of electro-optical nematic devices by lowering the required switching voltages and reducing the switching times.
与用于向列型液晶(NLC)本体行为的非常成功的埃里克森 - 莱斯利流体动力学理论并行,我们推导了一组耦合的流体动力学边界条件,以描述NLC - 固体界面附近的NLC动力学。在我们的边界条件中,平移通量(流动滑移)和旋转通量(表面指向矢弛豫)根据能量耗散最小的昂萨格变分原理耦合。将我们的边界条件应用于真正双稳态的π - 扭曲NLC盒,揭示了动态切换过程的完整图景。发现迄今为止在固体表面被忽视的平移 - 旋转耗散耦合可以加速表面指向矢弛豫并提高流速。这可用于通过降低所需的切换电压和减少切换时间来提高电光向列型器件的性能。