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Cryogenic-compatible ultrahigh rejection and narrowband sinusoidal Bragg filter for integrated quantum photonics
Optics Express
|December 19, 2025
Summary
This study presents a novel cryogenic-compatible Bragg filter for integrated quantum photonics. The filter achieves ultrahigh rejection ratios, crucial for extracting single photons in cryogenic quantum systems.
Area of Science:
- Quantum Photonics
- Cryogenic Engineering
- Nanophotonics
Background:
- Cryogenic environments are ideal for integrated quantum photonic systems due to low noise and component compatibility.
- High-performance on-chip optical filters are essential for isolating single photons from pump light in nonlinear processes.
- Existing filters often lack the necessary performance for demanding cryogenic quantum applications.
Purpose of the Study:
- To develop and demonstrate a cryogenic-compatible optical filter for integrated quantum photonic circuits.
- To achieve ultrahigh rejection and narrowband filtering for efficient single-photon extraction.
- To suppress background noise in cryogenic quantum photonic systems.
Main Methods:
- Designed a Bragg filter with a sinusoidal coherency-broken cascaded architecture.
- Incorporated subwavelength gratings to mitigate transverse magnetic mode photons.
- Utilized a niobium nitride film as a light absorption layer for noise suppression.
Main Results:
- Achieved an 82 dB rejection ratio at room temperature and 76 dB at 2.2 K.
- Demonstrated narrow bandwidths of 0.9 nm at room temperature and 0.8 nm at 2.2 K.
- Confirmed the filter's suitability for cryogenic operation.
Conclusions:
- The developed Bragg filter meets the stringent requirements for cryogenic integrated quantum photonic circuits.
- This filter technology provides essential support for advancing cryogenic quantum information processing.
- The design offers a pathway to enhanced performance in low-noise quantum optical systems.

