Publication | Open Access
Highly efficient visible and near-IR photon pair generation with thin-film lithium niobate
18
Citations
62
References
2024
Year
Efficient On-chipOptical MaterialsQuantum PhotonicsEngineeringMid-infrared Laser TechnologyOptoelectronic DevicesHigh-power LasersProgrammable PhotonicsTelecom WavelengthsPhoton Pair GenerationOptical PropertiesPhotonic Integrated CircuitNanophotonicsPhotonicsPulse GenerationPhysicsWavelength ConversionPhotonic MaterialsPhotonic DeviceElectro-optics DeviceThin-film Lithium NiobateApplied PhysicsQuantum DevicesQuantum Photonic DeviceOptoelectronics
Efficient on-chip entangled photon pair generation at telecom wavelengths is an integral aspect of emerging quantum optical technologies, particularly for quantum communication and computing. However, moving to shorter wavelengths enables the use of more accessible silicon detector technology, and opens up applications in imaging and spectroscopy. Here, we present high brightness ((1.6 ± 0.3) × 10 9 pairs/s/mW/nm) visible–near-IR photon pair generation in a periodically poled lithium niobate nanophotonic waveguide. The degenerate spectrum of the photon pairs is centered at 811 nm with a bandwidth of 117 nm when pumped with a spectrally multimode laser diode. The measured on-chip source efficiency of (2.3 ± 0.5) × 10 11 pairs/s/mW is on par with source efficiencies at telecom wavelengths and is also orders of magnitude higher than the efficiencies of other visible sources implemented in bulk crystal or diffused waveguide-based technologies. Further improvements in the brightness and efficiencies are possible by pumping the device with a single-frequency laser, which would also shrink the pair bandwidth. These results represent the shortest wavelength of photon pairs generated in a nanophotonic waveguide reported to date by nearly an octave.
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