论文标题
3D模式倒数设计的中红外元磁
3D-Patterned Inverse-Designed Mid-Infrared Metaoptics
论文作者
论文摘要
现代成像系统可以通过引入多层纳米图案结构来提高效率,紧凑性和应用,以根据其基本特性来操纵光。高传输效率多光谱成像令人惊讶地难以捉摸,因为丢弃大部分入射光的滤器阵列的常见使用。此外,大多数摄像机不会利用两极分化和空间自由度的丰富信息。光学超材料可以对这些电磁特性做出反应,但主要在单层几何形状中进行了探索,从而限制了它们的性能和多功能能力。在这里,我们使用先进的两光片光刻来实现多层散射结构,这些结构实现了高度非平凡的光学转换,旨在在达到焦平面阵列之前处理光。计算优化的多光谱和偏光分选设备由亚微米特征大小制造,并在中红外进行了实验验证。模拟中显示的最终结构根据其角动量重定向。这些设备表明,使用精确的三维纳米图案,可以直接修改传感器阵列的散射特性以创建高级成像系统。
Modern imaging systems can be enhanced in efficiency, compactness, and application through introduction of multilayer nanopatterned structures for manipulation of light based on its fundamental properties. High transmission efficiency multispectral imaging is surprisingly elusive due to the commonplace use of filter arrays which discard most of the incident light. Further, most cameras do not leverage the wealth of information in polarization and spatial degrees of freedom. Optical metamaterials can respond to these electromagnetic properties but have been explored primarily in single-layer geometries, limiting their performance and multifunctional capacity. Here we use advanced two-photon lithography to realize multilayer scattering structures that achieve highly nontrivial optical transformations intended to process light just before it reaches a focal plane array. Computationally optimized multispectral and polarimetric sorting devices are fabricated with submicron feature sizes and experimentally validated in the mid-infrared. A final structure shown in simulation redirects light based on its angular momentum. These devices demonstrate that with precise 3-dimensional nanopatterning, one can directly modify the scattering properties of a sensor array to create advanced imaging systems.