Xiang Xiao, Kim Jihwan, Escuti Michael J
Department of Physics, North Carolina State University, Raleigh, North Carolina, 27695, USA.
Department of Electrical and Computer Engineering, North Carolina State University, Raleigh, North Carolina, 27695, USA.
Sci Rep. 2018 May 8;8(1):7202. doi: 10.1038/s41598-018-25535-0.
Optical films and surfaces using geometric phase are increasingly demonstrating unique and sometimes enhanced performance compared to traditional elements employing propagation phase. Here, we report on a diffraction grating with wider angular bandwidth and significantly higher average first-order efficiency than the nearest prior art of metasurfaces, volume holographic gratings, and surface-relief gratings configured to achieve a steep deflection angle. More specifically, we demonstrate a liquid crystal (LC) polymer Bragg polarization grating (PG) with large angular bandwidth and high efficiency in transmission-mode for 532 nm wavelength and 400 nm period. Angular bandwidth was significantly increased by arranging two slanted grating layers within the same monolithic film. First, we studied the optical properties with simulation and identified a structure with 48° angular bandwidth and 70% average first-order efficiency. Second, we fabricated a sample using a photo-aligned chiral nematic LC, where the two grating slants were controlled by the chiral dopants. We measured 40° angular bandwidth, 76% average efficiency, and 96% peak efficiency. Strong input polarization sensitivity (300:1 contrast) and spectral bandwidth (200 nm) mostly matched prior PGs. This approach is especially advantageous for augmented-reality systems and nonmechanical beam steering.
与采用传播相位的传统元件相比,使用几何相位的光学薄膜和表面越来越多地展现出独特的、有时甚至是增强的性能。在此,我们报道一种衍射光栅,其角带宽比配置为实现陡峭偏转角的超表面、体全息光栅和表面浮雕光栅的最接近现有技术更宽,且平均一阶效率显著更高。更具体地说,我们展示了一种用于532纳米波长和400纳米周期的透射模式下具有大角带宽和高效率的液晶(LC)聚合物布拉格偏振光栅(PG)。通过在同一单片薄膜内排列两个倾斜光栅层,角带宽显著增加。首先,我们用模拟研究了光学特性,并确定了一种具有48°角带宽和70%平均一阶效率的结构。其次,我们使用光取向手性向列型液晶制造了一个样品,其中两个光栅倾斜度由手性掺杂剂控制。我们测量到角带宽为40°,平均效率为76%,峰值效率为96%。较强的输入偏振灵敏度(300:1对比度)和光谱带宽(200纳米)大多与先前的PG相当。这种方法对增强现实系统和非机械光束转向特别有利。