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High-efficiency large-area topology-optimized metasurfaces

机译:高效大面积拓扑优化的超颖表面

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摘要

Metasurfaces are ultrathin optical elements that are highly promising for constructing lightweight and compact optical systems. For their practical implementation, it is imperative to maximize the metasurface efficiency. Topology optimization provides a pathway for pushing the limits of metasurface efficiency; however, topology optimization methods have been limited to the design of microscale devices due to the extensive computational resources that are required. We introduce a new strategy for optimizing large-area metasurfaces in a computationally efficient manner. By stitching together individually optimized sections of the metasurface, we can reduce the computational complexity of the optimization from high-polynomial to linear. As a proof of concept, we design and experimentally demonstrate large-area, high-numerical-aperture silicon metasurface lenses with focusing efficiencies exceeding 90%. These concepts can be generalized to the design of multifunctional, broadband diffractive optical devices and will enable the implementation of large-area, high-performance metasurfaces in practical optical systems.
机译:超表面是超薄光学元件,对于构建轻巧紧凑的光学系统非常有前途。对于它们的实际实现,必须最大化超表面效率。拓扑优化为突破极限表面效率提供了途径。但是,由于需要大量的计算资源,因此拓扑优化方法仅限于微型设备的设计。我们介绍了一种以计算有效方式优化大面积超颖表面的新策略。通过将超表面的各个优化部分缝合在一起,我们可以将优化的计算复杂度从高多项式降低到线性。作为概念验证,我们设计并通过实验证明了大面积,高数值孔径的硅超表面透镜,其聚焦效率超过90%。这些概念可以推广到多功能宽带衍射光学设备的设计中,并可以在实际的光学系统中实现大面积,高性能的超颖表面。

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