Deep-learning-assisted inverse design of dual-spin/frequency metasurface for quad-channel off-axis vortices multiplexing

Kai Qu, Ke Chen, Q. Hu, Junming Zhao, T. Jiang, Yijun Feng
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引用次数: 3

Abstract

Abstract. Recently, the metasurfaces for independently controlling the wavefront and amplitude of two orthogonal circularly polarized electromagnetic (EM) waves have been demonstrated to open a way toward spin-multiplexing compact metadevices. However, these metasurfaces are mostly restricted to a single operation frequency band. The main challenge to achieving multiple frequency manipulations stems from the complicated and time-consuming design caused by multifrequency cross talk. To solve this problem, we propose a deep-learning-assisted inverse design method for designing a dual-spin/frequency metasurface with flexible multiplexing of off-axis vortices. By analyzing the cross talk between different spin/frequency channels based on the deep-learning method, we established the internal mapping relationship between the physical parameters of a meta-atom and its phase responses in multichannels, realizing the rapid inverse design of the spin/frequency multiplexing EM device. As a proof of concept, we demonstrated in the microwave region a dual-frequency arbitrary spin-to-orbit angular momentum converter, a dual-frequency off-axis vector vortex multiplexer, and a large-capacity (16-channel) vortex beam generator. The proposed method may provide a compact and efficient platform for the multiplexing of vortices, which may further stimulate their applications in wireless communication and quantum information science.
深度学习辅助四通道离轴涡旋复用双自旋/频率超表面反设计
摘要最近,独立控制两个正交圆极化电磁波的波前和振幅的超表面被证明为自旋复用紧凑元器件开辟了一条道路。然而,这些超表面大多局限于单一的工作频带。实现多频操作的主要挑战是多频串扰引起的复杂和耗时的设计。为了解决这一问题,我们提出了一种深度学习辅助的逆设计方法,用于设计具有离轴旋涡柔性复用的双自旋/频率超表面。基于深度学习方法分析了不同自旋/频率通道之间的串扰,建立了多通道中元原子物理参数与其相位响应之间的内部映射关系,实现了自旋/频率复用电磁器件的快速逆设计。作为概念验证,我们在微波区域展示了一个双频任意自旋到轨道的角动量转换器,一个双频离轴矢量涡旋多路复用器和一个大容量(16通道)涡旋光束发生器。该方法可为涡旋多路复用提供一个紧凑、高效的平台,进一步促进涡旋多路复用在无线通信和量子信息科学中的应用。
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