Chen Mingce, Shao Qi, He Wenda, Wei Dong, Hu Chai, Shi Jiashuo, Liu Kewei, Wang Haiwei, Xie Changsheng, Zhang Xinyu
National Key Laboratory of Science & Technology on Multispectral Information Processing, Huazhong University of Science & Technology, Wuhan 430074, China.
School of Artificial Intelligence and Automation, Huazhong University of Science & Technology, Wuhan 430074, China.
Micromachines (Basel). 2020 Nov 26;11(12):1039. doi: 10.3390/mi11121039.
As a unique electric-optics material, liquid crystals (LCs) have been used in various light-control applications. In LC-based light-control devices, the structural alignment of LC molecules is of great significance. Generally, additional alignment layers are required for LC lens and microlens, such as rubbed polyimide (PI) layers or photoalignment layers. In this paper, an electrically controlled liquid crystal microlens array (EC-LCMLA) based on single-crystal graphene (SCG) coupling alignment is proposed. A monolayer SCG with high conductivity and initial anchoring of LC molecules was used as a functional electrode, thus no additional alignment layer is needed, which effectively simplifies the basic structure and process flow of conventional LCMLA. Experiments indicated that a uniform LC alignment can be acquired in the EC-LCMLA cell by the SCG coupling alignment effect. The common optical properties including focal lengths and point spread function (PSF) were measured experimentally. Experiments demonstrated that the proposed EC-LCMLA has good focusing performance in the visible to near-infrared range. Moreover, the plenoptic imaging in Galilean mode was achieved by integrating the proposed EC-LCMLA with photodetectors. Digital refocusing was performed to obtain a rendering image of the target.
作为一种独特的电光材料,液晶已被应用于各种光控领域。在基于液晶的光控器件中,液晶分子的结构排列具有重要意义。通常,液晶透镜和微透镜需要额外的取向层,如摩擦聚酰亚胺(PI)层或光取向层。本文提出了一种基于单晶石墨烯(SCG)耦合取向的电控液晶微透镜阵列(EC-LCMLA)。具有高导电性和对液晶分子初始锚定作用的单层SCG被用作功能电极,因此无需额外的取向层,这有效地简化了传统液晶微透镜阵列的基本结构和工艺流程。实验表明,通过SCG耦合取向效应可在EC-LCMLA单元中获得均匀的液晶取向。对包括焦距和点扩散函数(PSF)在内的常见光学特性进行了实验测量。实验证明,所提出的EC-LCMLA在可见光到近红外范围内具有良好的聚焦性能。此外,通过将所提出的EC-LCMLA与光电探测器集成,实现了伽利略模式下的全光成像。进行了数字重聚焦以获得目标的渲染图像。