Wang Haiyan, Piestun Rafael
Department of Electrical, Computer, and Energy Engineering, University of Colorado Boulder, Boulder, Colorado, 80309, USA.
Sci Rep. 2020 Apr 15;10(1):6438. doi: 10.1038/s41598-020-63075-8.
Diffractive optics have increasingly caught the attention of the scientific community. Classical diffractive optics are 2D diffractive optical elements (DOEs) and computer-generated holograms (CGHs), which modulate optical waves on a solitary transverse plane. However, potential capabilities are missed by the inherent two-dimensional nature of these devices. Previous work has demonstrated that extending the modulation from planar (2D) to volumetric (3D) enables new functionalities, such as generating space-variant functions, multiplexing in the spatial or spectral domain, or enhancing information capacity. Unfortunately, despite significant progress fueled by recent interest in metasurface diffraction, 3D diffractive optics still remains relatively unexplored. Here, we introduce the concept of azimuthal multiplexing. We propose, design, and demonstrate 3D diffractive optics showing this multiplexing effect. According to this new phenomenon, multiple pages of information are encoded and can be read out across independent channels by rotating one or more diffractive layers with respect to the others. We implement the concept with multilayer diffractive optical elements. An iterative projection optimization algorithm helps solve the inverse design problem. The experimental realization using photolithographically fabricated multilevel phase layers demonstrates the predicted performance. We discuss the limitations and potential of azimuthal multiplexing 3D diffractive optics.
衍射光学越来越受到科学界的关注。传统的衍射光学是二维衍射光学元件(DOE)和计算机生成全息图(CGH),它们在单个横向平面上调制光波。然而,这些器件固有的二维特性限制了其潜在功能。先前的研究表明,将调制从平面(二维)扩展到体(三维)能够实现新的功能,例如生成空间变体函数、在空间或光谱域进行复用,或提高信息容量。不幸的是,尽管最近对超表面衍射的兴趣推动了显著进展,但三维衍射光学仍然相对未被充分探索。在此,我们引入方位复用的概念。我们提出、设计并展示了具有这种复用效应的三维衍射光学器件。根据这一新现象,多页信息被编码,并且通过相对于其他衍射层旋转一个或多个衍射层,可以在独立通道上读出这些信息。我们用多层衍射光学元件实现了这一概念。一种迭代投影优化算法有助于解决逆向设计问题。使用光刻制造的多级相位层的实验实现证明了预期的性能。我们讨论了方位复用三维衍射光学的局限性和潜力。