Ultra-high-Q silicon microring resonator enabled by optimized Bezier curved taper

An ultra-high-Q microring resonator (MRR) based on a spliced waveguide architecture with inverse-designed Bézier curved taper is experimentally demonstrated. This resonant cavity incorporates 0.45- μ m -wide single-mode arc waveguides to ensure fundamental mode purity in the coupling region, alongside 1.6- μ m -wide multi-mode arc waveguides at the maximum proportions to reduce scattering loss from fabrication-induced surface roughness, and Bézier curved tapers to provide a seamless and adiabatic connection between the two segments. Crucially, the taper employs dual 6th-order Bézier curves to construct a 15 ∘ gradually-expanding arc, achieving curvature continuity between the various waveguide sections within the resonant cavity, thereby effectively preventing mode crosstalk from deteriorating the Q-factor of the resonator. Benefiting from this optimized geometric structure, the taper exhibits an extremely low transmission loss of 0.11 dB/cm and a simulated average excitation ratio of higher-order modes of -44.43 dB in the C-band. The spliced MRR features a compact design with a radius of 120 μ m and a corresponding cavity length of only 0.75 m m . The MRR is fabricated using standard etching process provided by a wafer foundry. Experimental results show that the intrinsic Q-factor is 2.76 × 10 6 , with a free spectral range (FSR) of 0.84 n m . This indicates that the optimized Bézier curved taper provides a compact, low loss, and low mode crosstalk strategy for integrated photonic MRRs.

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Publication Details

Journal
Optics & Laser Technology
Published
2026-09-17
DOI
https://doi.org/10.1016/j.optlastec.2026.116353
Primary Topic
Photonic and Optical Devices
Type
article
Field-Weighted Citation Impact
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article

Ultra-high-Q silicon microring resonator enabled by optimized Bezier curved taper

Zijun Yao, Ji Shen, Zheyi Yao, Xing Yu et al.
Optics & Laser Technology
Photonic and Optical Devices
article

Ultra-high-Q silicon microring resonator enabled by optimized Bezier curved taper

Zijun Yao, Ji Shen, Zheyi Yao, Xing Yu, Yalin Zhang, Shenghang Zhou, Qian Chen, Yulin Deng, Xiubao Sui
article en

Abstract

An ultra-high-Q microring resonator (MRR) based on a spliced waveguide architecture with inverse-designed Bézier curved taper is experimentally demonstrated. This resonant cavity incorporates 0.45- μ m -wide single-mode arc waveguides to ensure fundamental mode purity in the coupling region, alongside 1.6- μ m -wide multi-mode arc waveguides at the maximum proportions to reduce scattering loss from fabrication-induced surface roughness, and Bézier curved tapers to provide a seamless and adiabatic connection between the two segments. Crucially, the taper employs dual 6th-order Bézier curves to construct a 15 ∘ gradually-expanding arc, achieving curvature continuity between the various waveguide sections within the resonant cavity, thereby effectively preventing mode crosstalk from deteriorating the Q-factor of the resonator. Benefiting from this optimized geometric structure, the taper exhibits an extremely low transmission loss of 0.11 dB/cm and a simulated average excitation ratio of higher-order modes of -44.43 dB in the C-band. The spliced MRR features a compact design with a radius of 120 μ m and a corresponding cavity length of only 0.75 m m . The MRR is fabricated using standard etching process provided by a wafer foundry. Experimental results show that the intrinsic Q-factor is 2.76 × 10 6 , with a free spectral range (FSR) of 0.84 n m . This indicates that the optimized Bézier curved taper provides a compact, low loss, and low mode crosstalk strategy for integrated photonic MRRs.

Optics & Laser TechnologyVol. 204
Nanjing University of Science and Technology (CN), Integrated Optoelectronics (Norway) (NO), Beijing Information Science & Technology University (CN)
National Natural Science Foundation of China
Life below water
Openalex Percentile: Top 20%
Photonic and Optical Devices
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