Hadjichristov Georgi B
Laboratory of Optics and Spectroscopy, Georgi Nadjakov Institute of Solid State Physics, Bulgarian Academy of Sciences, 72 Tzarigradsko Chaussee Blvd., 1784 Sofia, Bulgaria.
Materials (Basel). 2023 Sep 1;16(17):6014. doi: 10.3390/ma16176014.
This work addresses the achievement of efficient control of laser light transmission through stationary microperiodic parallel stripe textures formed in films of nematic liquid crystals (NLCs) in planar-oriented cells upon a direct-current (DC) electric field. By varying the field intensity and, thereby, the field-induced periodic modulation of the nematic director and hence the complex transmittance function corresponding to the longitudinal domain texture induced in NLC films with initial planar alignment, the intensity of a linearly polarized laser beam passed through the films can be well controlled. In 25 µm-thick films of room-temperature NLCs pentylcyanobiphenyl (5CB), this results in a low-voltage (~4 V) sharp and deep V-shaped behavior of their electro-optically controlled transmittance. Such a reversible electro-optical effect is interesting for active control of laser beam intensity and other applications. The relevant physical mechanism is analyzed and explained.
这项工作研究了在直流电场作用下,通过向列型液晶(NLC)薄膜中形成的固定微周期平行条纹纹理来实现对激光传输的有效控制。在初始平面取向的液晶盒中,通过改变电场强度,进而改变电场诱导的向列型指向矢的周期性调制,以及相应地改变与具有初始平面取向的NLC薄膜中诱导的纵向畴纹理相对应的复透射率函数,可以很好地控制通过薄膜的线偏振激光束的强度。在室温下的NLC正戊基氰基联苯(5CB)的25μm厚薄膜中,这导致其电光控制透射率呈现低电压(约4V)尖锐且深的V形行为。这种可逆的电光效应对于激光束强度的主动控制和其他应用来说很有意义。文中对相关物理机制进行了分析和解释。