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      Asymmetric bi-level dual-core mode converter for high-efficiency and polarization-insensitive O-band fiber-chip edge coupling: breaking the critical size limitation

      research-article
      , , , , , ,
      Nanophotonics
      De Gruyter
      edge coupler, asymmetric, dual-core, bi-level, silicon photonics, mode evanescent coupling

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          Abstract

          Efficient coupling between optical fibers and on-chip photonic waveguides has long been a crucial issue for photonic chips used in various applications. Edge couplers (ECs) based on an inverse taper have seen widespread utilization due to their intrinsic broadband operation. However, it still remains a big challenge to realize polarization-insensitive low-loss ECs working at the O-band (1,260–1,360 nm), mainly due to the strong polarization dependence of the mode coupling/conversion and the difficulty to fabricate the taper tip with an ultra-small feature size. In this paper, a high-efficiency and polarization-insensitive O-band EC is proposed and demonstrated with great advantages that is fully compatible with the current 130-nm-node fabrication processes. By introducing an asymmetric bi-level dual-core mode converter, the fundamental mode confined in the thick core is evanescently coupled to that in the thin core, which has an expanded mode size matched well with the fiber and works well for both TE/TM-polarizations. Particularly, no bi-level junction in the propagation direction is introduced between the thick and thin waveguide sections, thereby breaking the critical limitation of ultra-small feature sizes. The calculated coupling loss is 0.44–0.56/0.48–0.61 dB across the O-band, while achieving 1-dB bandwidths exceeding 340/230 nm for the TE/TM-polarization modes. For the fabricated ECs, the peak coupling loss is ∼0.82 dB with a polarization dependent loss of ∼0.31 dB at the O-band when coupled to a fiber with a mode field diameter of 4 μm. It is expected that this coupling scheme promisingly provides a general solution even for other material platforms, e.g., lithium niobate, silicon nitride and so on.

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          Most cited references37

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          Nanotaper for compact mode conversion

          We propose and demonstrate an efficient coupler for compact mode conversion between a fiber and a submicrometer waveguide. The coupler is composed of high-index-contrast materials and is based on a short taper with a nanometer-sized tip. We show that the micrometer-long silicon-on-insulator-based nanotaper coupler is able to efficiently convert both the mode field profile and the effective index, with a total length as short as 40 microm. We measure an enhancement of the coupling efficiency between an optical fiber and a waveguide by 1 order of magnitude due to the coupler.
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            Compact efficient broadband grating coupler for silicon-on-insulator waveguides.

            We have designed a high-efficiency broadband grating coupler for coupling between silicon-on-insulator (SOI) waveguides and optical fibers. The grating is only 13 microm long and 12 microm wide, and the size of the grooves is optimized numerically. For TE polarization the coupling loss to single-mode fiber is below 1 dB over a 35-nm wavelength range when using SOI with a two-pair bottom reflector. The tolerances to fabrication errors are also calculated.
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              Coupling strategies for silicon photonics integrated chips [Invited]

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                Author and article information

                Contributors
                Journal
                Nanophotonics
                Nanophotonics
                nanoph
                nanoph
                Nanophotonics
                De Gruyter
                2192-8606
                2192-8614
                9 September 2024
                September 2024
                : 13
                : 22
                : 4149-4157
                Affiliations
                deptState Key Laboratory for Extreme Photonics and Instrumentation, College of Optical Science and Engineering, Center for Optical & Electromagnetic Research, International Research Center for Advanced Photonics , universityZhejiang University , Zijingang Campus, Hangzhou 310058, China
                universityNingbo Research Institute, Zhejiang University , Ningbo 315100, China
                deptJiaxing Key Laboratory of Photonic Sensing & Intelligent Imaging, Intelligent Optics & Photonics Research Center , universityJiaxing Research Institute, Zhejiang University , Jiaxing 314000, China
                Author notes
                Corresponding author: Daoxin Dai, deptState Key Laboratory for Extreme Photonics and Instrumentation, College of Optical Science and Engineering, Center for Optical & Electromagnetic Research, International Research Center for Advanced Photonics , universityZhejiang University , Zijingang Campus, Hangzhou 310058, China; universityNingbo Research Institute, Zhejiang University , Ningbo 315100, China; and deptJiaxing Key Laboratory of Photonic Sensing & Intelligent Imaging, Intelligent Optics & Photonics Research Center , universityJiaxing Research Institute, Zhejiang University , Jiaxing 314000, China, E-mail:  dxdai@ 123456zju.edu.cn
                Author information
                https://orcid.org/0000-0003-4489-8310
                https://orcid.org/0000-0002-2769-3009
                Article
                nanoph-2024-0320
                10.1515/nanoph-2024-0320
                11501050
                39635453
                a551dc4b-52ed-4015-ba9e-e9da07a636ab
                © 2024 the author(s), published by De Gruyter, Berlin/Boston

                This work is licensed under the Creative Commons Attribution 4.0 International License.

                History
                : 16 June 2024
                : 21 August 2024
                Page count
                Figures: 5, Tables: 1, References: 37, Pages: 9
                Funding
                Funded by: National Major Research and Development Program
                Award ID: 2019YFB2203600
                Funded by: National Natural Science Foundation of China
                Award ID: 61961146003
                Award ID: 62005238
                Award ID: 62125503
                Award ID: 91950205
                Funded by: National Science Fund for Distinguished Young Scholars
                Award ID: 61725503
                Funded by: The Fundamental Research Funds for the Central Universities
                Funded by: Natural Science Foundation of Zhejiang Province
                Award ID: LD19F050001
                Funded by: The Leading Innovative and Entrepreneur Team Introduction Program of Zhejiang
                Award ID: 2021R01001
                Funded by: National Key Research and Development Program of China
                Award ID: 2021YFB2800404
                Categories
                Research Article

                edge coupler,asymmetric,dual-core,bi-level,silicon photonics,mode evanescent coupling

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