Topologically-optimized on-chip metamaterials for ultra-short-range light focusing and mode-size conversion

The concept of metamaterials offers a flexible pathway to manipulate the macroscopic behavior of light by delicately designed microscopic subwavelength structures, which has been recently introduced to integrated photonics to create devices with ultra-compact footprint, excellent performance or vers...

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Main Authors: Ma Wei, Hou Maojing, Luo Ruiqi, Xiong Bo, Liu Nan, Liu Guandong, Chu Tao
Format: Article
Language:English
Published: De Gruyter 2023-02-01
Series:Nanophotonics
Subjects:
Online Access:https://doi.org/10.1515/nanoph-2023-0036
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author Ma Wei
Hou Maojing
Luo Ruiqi
Xiong Bo
Liu Nan
Liu Guandong
Chu Tao
author_facet Ma Wei
Hou Maojing
Luo Ruiqi
Xiong Bo
Liu Nan
Liu Guandong
Chu Tao
author_sort Ma Wei
collection DOAJ
description The concept of metamaterials offers a flexible pathway to manipulate the macroscopic behavior of light by delicately designed microscopic subwavelength structures, which has been recently introduced to integrated photonics to create devices with ultra-compact footprint, excellent performance or versatile functionalities. However, the conventional design approach of metamaterials, including two separated steps of subwavelength structure design and the assembly of unit cells, often encounters challenges when facing extreme design targets. In this work, we propose a hierarchical inverse design approach by cascading a conventional unit-cell-based design with a holistic topology optimization. As a proof-of-concept, we demonstrate ultra-short-range light focusing and mode-size conversion enabled by on-chip meta-lenses. The shortening of tapering region pushes higher numerical aperture of on-chip lenses, leading to the violation of locally periodic approximation used in meta-lens design and thus poor device performance, which fortunately, can be well compensated by the follow-up holistic optimization step. We experimentally realize mode-size squeezing by almost 20 times in a tapering region as short as 8 μm and 5 μm with low insertion loss and broadband performance. The proposed design scheme provides practical guidelines to design metamaterials as flexible on-chip wavefront control and light routing devices for various applications in fiber communication, sensing and optical computing.
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spelling doaj.art-476d593679da483c9c6bf484727dae272023-04-11T17:07:18ZengDe GruyterNanophotonics2192-86142023-02-011261189119710.1515/nanoph-2023-0036Topologically-optimized on-chip metamaterials for ultra-short-range light focusing and mode-size conversionMa Wei0Hou Maojing1Luo Ruiqi2Xiong Bo3Liu Nan4Liu Guandong5Chu Tao6State Key Laboratory of Modern Optical Instrumentation, College of Information Science and Electronic Engineering, Zhejiang University, Hangzhou310027, ChinaZhejiang Lab, Intelligent Network Research Institute, Hangzhou311100, ChinaZhejiang Lab, Intelligent Network Research Institute, Hangzhou311100, ChinaState Key Laboratory of Modern Optical Instrumentation, College of Information Science and Electronic Engineering, Zhejiang University, Hangzhou310027, ChinaZhejiang Lab, Intelligent Network Research Institute, Hangzhou311100, ChinaZhejiang Lab, Intelligent Network Research Institute, Hangzhou311100, ChinaState Key Laboratory of Modern Optical Instrumentation, College of Information Science and Electronic Engineering, Zhejiang University, Hangzhou310027, ChinaThe concept of metamaterials offers a flexible pathway to manipulate the macroscopic behavior of light by delicately designed microscopic subwavelength structures, which has been recently introduced to integrated photonics to create devices with ultra-compact footprint, excellent performance or versatile functionalities. However, the conventional design approach of metamaterials, including two separated steps of subwavelength structure design and the assembly of unit cells, often encounters challenges when facing extreme design targets. In this work, we propose a hierarchical inverse design approach by cascading a conventional unit-cell-based design with a holistic topology optimization. As a proof-of-concept, we demonstrate ultra-short-range light focusing and mode-size conversion enabled by on-chip meta-lenses. The shortening of tapering region pushes higher numerical aperture of on-chip lenses, leading to the violation of locally periodic approximation used in meta-lens design and thus poor device performance, which fortunately, can be well compensated by the follow-up holistic optimization step. We experimentally realize mode-size squeezing by almost 20 times in a tapering region as short as 8 μm and 5 μm with low insertion loss and broadband performance. The proposed design scheme provides practical guidelines to design metamaterials as flexible on-chip wavefront control and light routing devices for various applications in fiber communication, sensing and optical computing.https://doi.org/10.1515/nanoph-2023-0036integrated photonicsinverse designmeta-lensmetamaterial
spellingShingle Ma Wei
Hou Maojing
Luo Ruiqi
Xiong Bo
Liu Nan
Liu Guandong
Chu Tao
Topologically-optimized on-chip metamaterials for ultra-short-range light focusing and mode-size conversion
Nanophotonics
integrated photonics
inverse design
meta-lens
metamaterial
title Topologically-optimized on-chip metamaterials for ultra-short-range light focusing and mode-size conversion
title_full Topologically-optimized on-chip metamaterials for ultra-short-range light focusing and mode-size conversion
title_fullStr Topologically-optimized on-chip metamaterials for ultra-short-range light focusing and mode-size conversion
title_full_unstemmed Topologically-optimized on-chip metamaterials for ultra-short-range light focusing and mode-size conversion
title_short Topologically-optimized on-chip metamaterials for ultra-short-range light focusing and mode-size conversion
title_sort topologically optimized on chip metamaterials for ultra short range light focusing and mode size conversion
topic integrated photonics
inverse design
meta-lens
metamaterial
url https://doi.org/10.1515/nanoph-2023-0036
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