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A Computational Design Framework for Efficient Fabrication Error-Tolerant Planar THz Diffractive Optical Elements

机译:高效耐制造误差的平面太赫兹衍射光学元件的计算设计框架

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摘要

We demonstrate ultra-thin (1.5-3λ0), fabrication-error tolerant efficient diffractive terahertz (THz) optical elements designed using a computer-aided optimization-based search algorithm. The basic operation of these components is modeled using scalar diffraction of electromagnetic waves through a pixelated multi-level 3D-printed polymer structure. Through the proposed design framework, we demonstrate the design of various ultrathin planar THz optical elements, namely (i) a high Numerical Aperture (N.A.), broadband aberration rectified spherical lens (0.1 THz–0.3 THz), (ii) a spectral splitter (0.3 THz–0.6 THz) and (iii) an on-axis broadband transmissive hologram (0.3 THz–0.5 THz). Such an all-dielectric computational design-based approach is advantageous against metallic or dielectric metasurfaces from the perspective that it incorporates all the inherent structural advantages associated with a scalar diffraction based approach, such as (i) ease of modeling, (ii) substrate-less facile manufacturing, (iii) planar geometry, (iv) high efficiency along with (v) broadband operation, (vi) area scalability and (vii) fabrication error-tolerance. With scalability and error tolerance being two major bottlenecks of previous design strategies. This work is therefore, a significant step towards the design of THz optical elements by bridging the gap between structural and computational design i.e. through a hybrid design-based approach enabling considerably less computational resources than the previous state of the art. Furthermore, the approach used herein can be expanded to a myriad of optical elements at any wavelength regime.
机译:我们演示了使用基于计算机的基于优化的搜索算法设计的超薄(1.5-3λ0),耐制造误差的高效衍射太赫兹(THz)光学元件。这些组件的基本操作使用电磁波通过像素化的多层3D打印的聚合物结构的标量衍射来建模。通过提出的设计框架,我们演示了各种超薄平面THz光学元件的设计,即(i)高数值孔径(NA),宽带像差矫正球面透镜(0.1 THz–0.3 THz),(ii)光谱分离器( 0.3 THz–0.6 THz)和(iii)同轴宽带透射全息图(0.3 THz–0.5 THz)。从这样的角度来看,这种基于全介电计算设计的方法对金属或介电超表面是有利的,因为它结合了与基于标量衍射的方法相关的所有固有结构优势,例如(i)易于建模,(ii)衬底-较不方便的制造,(iii)平面几何形状,(iv)高效率以及(v)宽带操作,(vi)面积可扩展性和(vii)制造误差。可扩展性和容错能力是先前设计策略的两个主要瓶颈。因此,通过弥合结构设计和计算设计之间的空白,即通过基于混合设计的方法,该工作是向太赫兹光学元件设计迈出的重要一步,该方法允许比以前的现有技术少得多的计算资源。此外,在此使用的方法可以扩展到任何波长范围的无数光学元件。

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