Honari-Latifpour Mostafa, Binaie Ali, Eftekhar Mohammad Amin, Madamopoulos Nicholas, Miri Mohammad-Ali
Department of Physics, Queens College of the City University of New York, Queens, 11367, New York, USA.
Physics Program, The Graduate Center of the City University of New York, New York, 10016, NY, USA.
Nanophotonics. 2022 Aug 3;11(16):3679-3686. doi: 10.1515/nanoph-2022-0198. eCollection 2022 Sep.
Integrated planar lenses are critical components for analog optical information processing that enable a wide range of applications including beam steering. Conventional planar lenses require gradient index control which makes their on-chip realization challenging. Here, we introduce a new approach for beam steering by designing an array of coupled waveguides with segmented tails that allow for simultaneously achieving planar lensing and off-chip radiation. The proposed arrayed waveguide lens is built on engineering the evanescent coupling between adjacent channels to realize a photonic lattice with an equi-distant ladder of propagation constants that emulates the continuous parabolic index profile. Through coupled-mode analysis and full-wave numerical simulations, we show that selective excitation of waveguide channels enables beam steering with large field-of-views of ∼60°. The proposed arrayed waveguide lens can serve as a compact component in integrated photonic circuits for applications in imaging, sensing, and metrology.
集成平面透镜是模拟光学信息处理的关键组件,可实现包括光束转向在内的广泛应用。传统平面透镜需要渐变折射率控制,这使得它们在芯片上的实现具有挑战性。在此,我们通过设计一系列带有分段尾部的耦合波导阵列来引入一种新的光束转向方法,该方法能够同时实现平面透镜效应和片外辐射。所提出的阵列波导透镜基于对相邻通道间倏逝耦合的工程设计,以实现具有等距传播常数阶梯的光子晶格,从而模拟连续的抛物线折射率分布。通过耦合模分析和全波数值模拟,我们表明对波导通道的选择性激发能够实现约60°的大视场光束转向。所提出的阵列波导透镜可作为集成光子电路中的紧凑组件,用于成像、传感和计量等应用。