De Sio Luciano, Roberts David E, Liao Zhi, Nersisyan Sarik, Uskova Olena, Wickboldt Lloyd, Tabiryan Nelson, Steeves Diane M, Kimball Brian R
Opt Express. 2016 Aug 8;24(16):18297-306. doi: 10.1364/OE.24.018297.
Geometrical phase or the fourth generation (4G) optics enables realization of optical components (lenses, prisms, gratings, spiral phase plates, etc.) by patterning the optical axis orientation in the plane of thin anisotropic films. Such components exhibit near 100% diffraction efficiency over a broadband of wavelengths. The films are obtained by coating liquid crystalline (LC) materials over substrates with patterned alignment conditions. Photo-anisotropic materials are used for producing desired alignment conditions at the substrate surface. We present and discuss here an opportunity of producing the widest variety of "free-form" 4G optical components with arbitrary spatial patterns of the optical anisotropy axis orientation with the aid of a digital spatial light polarization converter (DSLPC). The DSLPC is based on a reflective, high resolution spatial light modulator (SLM) combined with an "ad hoc" optical setup. The most attractive feature of the use of a DSLPC for photoalignment of nanometer thin photo-anisotropic coatings is that the orientation of the alignment layer, and therefore of the fabricated LC or LC polymer (LCP) components can be specified on a pixel-by-pixel basis with high spatial resolution. By varying the optical magnification or de-magnification the spatial resolution of the photoaligned layer can be adjusted to an optimum for each application. With a simple "click" it is possible to record different optical components as well as arbitrary patterns ranging from lenses to invisible labels and other transparent labels that reveal different images depending on the side from which they are viewed.
几何相位或第四代(4G)光学技术能够通过在薄各向异性薄膜平面上对光轴方向进行图案化来实现光学元件(透镜、棱镜、光栅、螺旋相位板等)。这类元件在宽波长范围内展现出近100%的衍射效率。这些薄膜是通过在具有图案化取向条件的基板上涂覆液晶(LC)材料获得的。光致各向异性材料用于在基板表面产生所需的取向条件。在此,我们展示并讨论借助数字空间光偏振转换器(DSLPC)生产具有任意光学各向异性轴取向空间图案的各种“自由形式”4G光学元件的机会。DSLPC基于一个反射式高分辨率空间光调制器(SLM)以及一个“特制”光学装置。使用DSLPC对纳米级薄光致各向异性涂层进行光取向的最吸引人之处在于,取向层的取向,进而所制造的LC或LC聚合物(LCP)元件的取向,可以以高空间分辨率逐像素地指定。通过改变光学放大倍数或缩小倍数,光取向层的空间分辨率可以针对每个应用调整到最佳状态。只需简单“点击”一下,就可以记录不同的光学元件以及从透镜到隐形标签和其他透明标签等任意图案,这些标签根据观察角度的不同会显示出不同的图像。