反向设计的色散时间调制纳米结构

Puneet Garg, Jan David Fischbach, Aristeidis G. Lamprianidis, Xuchen Wang, Mohammad S. Mirmoosa, Viktar S. Asadchy, Carsten Rockstuhl, Thomas J. Sturges
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引用次数: 0

摘要

时间调制纳米结构使我们能够控制光的空间和时间特性。纳米结构的时间调制构成了一种额外的自由度,可按需以可重新配置的方式控制其散射特性。因此,必须使用光子反向设计领域的工具来优化系统的自由度,以促进预定义的光学响应。为了进一步发展这一领域,我们在此为色散时间调制纳米结构引入了基于可微分转换(T-)矩阵的反设计框架。纳米结构材料的电子密度作为时间的一般周期函数进行非绝热调制。利用反向设计框架,可以操纵电子密度的时间形状,从而实现目标功能。我们的计算框架在两个实例中得到了应用。首先,按需控制时间调制球附近振荡偶极子的衰减率增强。其次,利用时空元曲面,设计了一个支持可见光非对称传输的系统。我们的研究为未来可重构功能光子设备的可编程时空元表面和时空晶体铺平了道路。
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Inverse-designed dispersive time-modulated nanostructures
Time-modulated nanostructures allow us to control the spatial and temporal properties of light. The temporal modulation of the nanostructures constitutes an additional degree of freedom to control their scattering properties on demand and in a reconfigurable manner. However, these additional parameters create a vast design space, raising challenges in identifying optimal designs. Therefore, tools from the field of photonic inverse design must be used to optimize the degrees of freedom of the system to facilitate predefined optical responses. To further develop this field, here we introduce a differentiable transition (T-) matrix-based inverse design framework for dispersive time-modulated nanostructures. The electron density of the material of the nanostructures is modulated non-adiabatically as a generic periodic function of time. Using the inverse design framework, the temporal shape of the electron density can be manipulated to reach the target functionality. Our computational framework is exploited, exemplarily, in two instances. First, the decay rate enhancement of oscillating dipoles near time-modulated spheres is controlled on demand. Second, using spatiotemporal metasurfaces, a system supporting asymmetric transmission of light at visible frequencies is designed. Our work paves the way toward programmable spatiotemporal metasurfaces and space-time crystals for a future generation of reconfigurable functional photonic devices.
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