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High-efficiency bident edge coupler based on thin film lithium niobate
Optics Express
|April 12, 2025
Summary
We developed a new bident edge coupler for thin-film lithium niobate (TFLN) photonic integrated circuits. This design improves optical fiber coupling efficiency and alignment tolerance while simplifying fabrication.
Area of Science:
- Photonics
- Materials Science
- Integrated Optics
Background:
- Thin-film lithium niobate (TFLN) is a key platform for photonic integrated circuits (PICs) due to its high nonlinear coefficients and electro-optic response.
- Efficient optical fiber coupling to TFLN chips is crucial but challenging due to fabrication complexity and alignment precision requirements of existing edge couplers.
Purpose of the Study:
- To propose and demonstrate a high-efficiency, fabrication-friendly, and alignment-tolerant bident edge coupler for TFLN devices.
- To overcome the limitations of current edge coupler designs in terms of performance and manufacturing.
Main Methods:
- Design of a novel bident edge coupler comprising facet coupling, beam combining, and adiabatic taper regions.
- Fabrication using a simplified single overlay process.
- Characterization of coupling efficiency, spectral performance across the C-band, and alignment tolerance.
Main Results:
- Achieved a measured coupling efficiency better than -1.52 dB per facet at 1550 nm.
- Demonstrated an average coupling efficiency between -1.85 dB and -1.6 dB across the C-band.
- Obtained a mode field diameter of approximately 4 μm and a large alignment tolerance of ±1 μm.
Conclusions:
- The proposed bident edge coupler offers a practical and high-performance solution for optical interface packaging in TFLN devices.
- The design simplifies fabrication, requiring only a single overlay step, making it suitable for mass production.
- This advancement facilitates the integration of TFLN-based PICs with optical fibers, enabling broader applications.

