PhotoniX, Volume. 2, Issue 1, 11(2021)
Subwavelength silicon photonics for on-chip mode-manipulation
[3] [3] Eldada L. Advances in ROADM technologies and subsystems. Photonics North. International Society for Optics and Photonic. 2005; 5970:597022-597022-10.
[21] [21] Zhou Z, Bai B, Liu L. Silicon on-chip PDM and WDM technologies via plasmonics and subwavelength grating. IEEE J Select Top Quantum Electron. 2018;25(3):1–13.
[37] [37] Guan X, et al. Ultra-compact broadband TM-pass polarizer using a silicon hybrid plasmonic waveguide grating. In: Proceedings of Asia Communications and Photonics Conference. Beijing, 2013; ATh4A.
[38] [38] Guan X, et al. Ultra-compact and ultrabroadband TE-pass polarizer with a silicon hybrid plasmonic waveguide. In: Proceedings of SPIE Photonics West. San Francisco. 2014; 8988
[60] [60] Wu H. and Dai D. Novel high-performance polarization beam splitter on silicon. Asia Communications and Photonics Conference (ACP). 2016; IEEE.
[66] [66] Chia-Chien H. Numerical investigations of an ultra-compact polarization beam splitter based on augmented low-index guiding and subwavelength grating structures. Sci Rep. 2018;8(1):1–11.
[90] [90] Wu H, Guan X, and Dai D. Novel silicon polarization beam splitter with a horizontal hybrid nanoplasmonic waveguide. Asia Communications and Photonics Conference. Optical Society of America, 2014.
[110] [110] Chang W, et al. Inverse design and demonstration of ultracompact silicon polarization rotator. 2019 Optical fiber communications conference and exhibition (OFC). IEEE, 2019.
[121] [121] Komatsu M, Saitoh K, and Koshiba M. Design of ultra-small mode-evolution type polarization rotator based on surface plasmon polariton. Integrated Photonics Research, Silicon and Nanophotonics. Optical Society of America, 2012.
[139] [139] Wang Y, et al. Compact broadband directional couplers using subwavelength gratings. IEEE Photonics J. 2016;8(3):1–8.
[141] [141] Lu L, Zhang M, and Liu D. Polarization insensitive 3-dB directional coupler based on sub-wavelength grating structure. Asia Communications and Photonics Conference. Optical Society of America, 2015.
[147] [147] Barwicz T. An O-band metamaterial converter interfacing standard optical fibers to silicon nanophotonic waveguides. In: Proc. Opt. Fiber Commun. Conf., 2015; Paper Th3F.3.
[148] [148] Barwicz T, Kamlapurkar S, Martin Y, Bruce R, and Engelmann S. A silicon metamaterial chip-to-chip coupler for photonic flip-chip applications. In Proc. Opt. Fiber Commun. Conf., 2017, Paper Th2A.39.
[149] [149] Picard M, Painchaud Y, Latrasse C, Larouche C, Pelletier F, and Poulin M. Novel spot-size converter for optical fiber to sub-μm silicon waveguide coupling with low loss, low wavelength dependence and high tolerance to alignment. in Proc. Eur. Conf. Opt. Commun. (ECOC), 2015;1–3.
[190] [190] Dave U, and Lipson M. Efficient conversion to very high order modes in silicon waveguides. CLEO: Science and Innovations. Optical Society of America, 2019.
[191] [191] Li C, Ye C, and Dai D. SWG-assisted multimode add-drop multiplexer. (to be submitted)
[193] [193] Jiang W, Wang X. Ultra-broadband mode splitter based on phase controlling of bridged subwavelength grating. J Lightwave Technol. 2020;99:1–1.
[203] [203] Frellsen L, Ding Y, Sigmund O, and Frandsen L. Topology-optimized mode converter in a silicon-on-insulator photonic wire waveguide. CLEO: Science and Innovations. Optical Society of America, 2016; STh3E. 4.
[208] [208] Yao C, et al. Multi-mode conversion via two-dimensional refractive-index perturbation on a silicon waveguide. arXiv preprint arXiv. 2019; 1911.10786.
[213] [213] Wang H, Zhang Y, He Y, Zhu Q, Sun L, Su Y. Compact silicon waveguide mode converter employing dielectric metasurface structure. Adv Opt Mater. 2019;7(4):1801191.
[214] [214] Guo J, et al. Extremely compact guided-mode exchangers on silicon. Laser Photonics Rev. 2020;202000058.
[225] [225] Yuanyuan C, et al. Analysis on influencing factors of bend loss of silicon-on-insulator waveguides. J Semicond. 2005;26:216.
[229] [229] Wu X, et al. Low crosstalk bent multimode waveguide for on-chip mode-division multiplexing interconnects. //CLEO: QELS_Fundamental Science. Optical Society of America, 2018; JW2A. 66.
[231] [231] Sun C, et al. A novel sharply bent silicon multimode waveguide with ultrahigh mode ER. Optical Fiber Communications Conference and Exhibition. IEEE, 2016.
[234] [234] Teng M, et al. A 3-micron-radius bend for SOI TE0/TE1 multiplexing //CLEO: applications and technology. Optical Society of America, 2018: JW2A. 13.
[235] [235] Chang W, et al. Ultra-compact silicon multi-mode waveguide bend based on subwavelength asymmetric Y-junction. Optical Fiber Communication Conference. Optical Society of America 2018: Tu3A. 1
[238] [238] Xie H, et al. Demonstration of an ultra-compact bend for four modes based on pixelated meta-structure. Optical Fiber Communication Conference. Optical Society of America, 2020.
[239] [239] Wang Y, Dai D. Ultra-sharp multimode waveguide bends with dual polarizations. J Lightwave Technol. 2020;38(15):3994–9.
[242] [242] Kim S-H, et al. Low-crosstalk waveguide crossing based on 1×1 MMI structure of silicon-wire waveguide. 2013 Conference on Lasers and Electro-Optics Pacific Rim (CLEOPR). IEEE, 2013.
[252] [252] Chen LR, et al. Subwavelength grating waveguide devices for telecommunications applications. IEEE J Sel Top Quant Electron. 2018;25(3):8200111.
[263] [263] Jean P, et al. Slow light in subwavelength grating waveguides. IEEE J Select Top Quantum Electron. 2019;26(2):8200108.
[264] [264] Gervais A, et al. Tunable slow-light in silicon photonic subwavelength grating waveguides. 2019 IEEE 16th International Conference on Group IV Photonics (GFP). IEEE, 2019.
[266] [266] Li T, and Zou Y. Coupling condition engineered subwavelength grating waveguide ring resonator for sensitivity enhancement. Integrated Optics: Devices, Materials, and Technologies XXIV. Vol. 11283. International Society for Optics and Photonics, 2020.
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Chenlei Li, Ming Zhang, Hongnan Xu, Ying Tan, Yaocheng Shi, Daoxin Dai. Subwavelength silicon photonics for on-chip mode-manipulation[J]. PhotoniX, 2021, 2(1): 11
Category: Research Articles
Received: Mar. 22, 2021
Accepted: May. 12, 2021
Published Online: Jul. 10, 2023
The Author Email: Dai Daoxin (dxdai@zju.edu.cn)