{"title":"Time-reversal Inverse-designed Metasurfaces for On-demand Resonance Tailoring and Dispersion Engineering","authors":"Mingfeng Xu, Di Sang, Mingbo Pu, Tianqu Chen, Yuhan Zheng, Shilin Yu, Fei Zhang, Yinghui Guo, Xiong Li, Xiaoliang Ma, Yunqi Fu, Xiangang Luo","doi":"10.1002/lpor.202401819","DOIUrl":null,"url":null,"abstract":"Metasurfaces, endowed with sophisticated spectral tuning capabilities such as broadband optical resonance tailoring and dispersion engineering, play an indispensable role in a range of applications, including optical sensing, filtering, pulse shaping, and integrated optics. However, due to issues such as spectral non-uniform discrete sampling and multi-objective optimization, it remains a significant challenge to design freeform metasurfaces with sophisticated optical spectral responses using traditional frequency-domain topology optimization methods. Here, a straightforward but effective time-domain topology optimization method based on time-reversal for inverse design of broadband resonance and dispersion metasurfaces is proposed. By incorporating time-reversal symmetry and Green's function symmetry, the time-causal gradient of the figure of merit from the metasurfaces' forward and adjoint time-domain pulse responses is extracted. This strategy enables the entire response spectrum of metasurfaces to be captured simultaneously in a single simulation, instead of calculating that of metasurfaces at each frequency individually, thus circumventing the problem of multi-wavelength multi-objective optimization. As a proof-of-concept demonstration, two freeform broadband EIT resonant metasurfaces with different Q factors (2971 and 131) over a bandwidth of 100 nm are demonstrated, as well as a freeform broadband dispersion metasurface exhibiting anomalous group delay dispersion of −12 <span data-altimg=\"/cms/asset/84df8a10-881e-44e3-a663-a2a2ae16ff29/lpor202401819-math-0001.png\"></span><mjx-container ctxtmenu_counter=\"1\" ctxtmenu_oldtabindex=\"1\" jax=\"CHTML\" role=\"application\" sre-explorer- style=\"font-size: 103%; position: relative;\" tabindex=\"0\"><mjx-math aria-hidden=\"true\" location=\"graphic/lpor202401819-math-0001.png\"><mjx-semantics><mjx-msup data-semantic-children=\"0,1\" data-semantic- data-semantic-role=\"unknown\" data-semantic-speech=\"f s squared\" data-semantic-type=\"superscript\"><mjx-mi data-semantic-font=\"normal\" data-semantic- data-semantic-parent=\"2\" data-semantic-role=\"unknown\" data-semantic-type=\"identifier\"><mjx-c></mjx-c><mjx-c></mjx-c></mjx-mi><mjx-script style=\"vertical-align: 0.432em;\"><mjx-mn data-semantic-annotation=\"clearspeak:simple\" data-semantic-font=\"normal\" data-semantic- data-semantic-parent=\"2\" data-semantic-role=\"integer\" data-semantic-type=\"number\" size=\"s\"><mjx-c></mjx-c></mjx-mn></mjx-script></mjx-msup></mjx-semantics></mjx-math><mjx-assistive-mml display=\"inline\" unselectable=\"on\"><math altimg=\"urn:x-wiley:18638880:media:lpor202401819:lpor202401819-math-0001\" display=\"inline\" location=\"graphic/lpor202401819-math-0001.png\" xmlns=\"http://www.w3.org/1998/Math/MathML\"><semantics><msup data-semantic-=\"\" data-semantic-children=\"0,1\" data-semantic-role=\"unknown\" data-semantic-speech=\"f s squared\" data-semantic-type=\"superscript\"><mi data-semantic-=\"\" data-semantic-font=\"normal\" data-semantic-parent=\"2\" data-semantic-role=\"unknown\" data-semantic-type=\"identifier\">fs</mi><mn data-semantic-=\"\" data-semantic-annotation=\"clearspeak:simple\" data-semantic-font=\"normal\" data-semantic-parent=\"2\" data-semantic-role=\"integer\" data-semantic-type=\"number\">2</mn></msup>${\\rm fs}^2$</annotation></semantics></math></mjx-assistive-mml></mjx-container> over a 128 nm bandwidth. This research paves the way for arbitrary design of optical resonance and dispersion in metasurfaces and may find exciting applications in metaoptics, integrated optics, and nanophotonics.","PeriodicalId":204,"journal":{"name":"Laser & Photonics Reviews","volume":"34 1","pages":""},"PeriodicalIF":9.8000,"publicationDate":"2025-03-06","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Laser & Photonics Reviews","FirstCategoryId":"101","ListUrlMain":"https://doi.org/10.1002/lpor.202401819","RegionNum":1,"RegionCategory":"物理与天体物理","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q1","JCRName":"OPTICS","Score":null,"Total":0}
引用次数: 0
Abstract
Metasurfaces, endowed with sophisticated spectral tuning capabilities such as broadband optical resonance tailoring and dispersion engineering, play an indispensable role in a range of applications, including optical sensing, filtering, pulse shaping, and integrated optics. However, due to issues such as spectral non-uniform discrete sampling and multi-objective optimization, it remains a significant challenge to design freeform metasurfaces with sophisticated optical spectral responses using traditional frequency-domain topology optimization methods. Here, a straightforward but effective time-domain topology optimization method based on time-reversal for inverse design of broadband resonance and dispersion metasurfaces is proposed. By incorporating time-reversal symmetry and Green's function symmetry, the time-causal gradient of the figure of merit from the metasurfaces' forward and adjoint time-domain pulse responses is extracted. This strategy enables the entire response spectrum of metasurfaces to be captured simultaneously in a single simulation, instead of calculating that of metasurfaces at each frequency individually, thus circumventing the problem of multi-wavelength multi-objective optimization. As a proof-of-concept demonstration, two freeform broadband EIT resonant metasurfaces with different Q factors (2971 and 131) over a bandwidth of 100 nm are demonstrated, as well as a freeform broadband dispersion metasurface exhibiting anomalous group delay dispersion of −12 over a 128 nm bandwidth. This research paves the way for arbitrary design of optical resonance and dispersion in metasurfaces and may find exciting applications in metaoptics, integrated optics, and nanophotonics.
期刊介绍:
Laser & Photonics Reviews is a reputable journal that publishes high-quality Reviews, original Research Articles, and Perspectives in the field of photonics and optics. It covers both theoretical and experimental aspects, including recent groundbreaking research, specific advancements, and innovative applications.
As evidence of its impact and recognition, Laser & Photonics Reviews boasts a remarkable 2022 Impact Factor of 11.0, according to the Journal Citation Reports from Clarivate Analytics (2023). Moreover, it holds impressive rankings in the InCites Journal Citation Reports: in 2021, it was ranked 6th out of 101 in the field of Optics, 15th out of 161 in Applied Physics, and 12th out of 69 in Condensed Matter Physics.
The journal uses the ISSN numbers 1863-8880 for print and 1863-8899 for online publications.