Low-power integrated optical parametric amplification via second-harmonic resonance

Fuente: arXiv
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Hauptverfasser: Dean, Devin J., Park, Taewon, Stokowski, Hubert S., Qi, Luke, Robison, Sam, Hwang, Alexander Y., Herrmann, Jason, Fejer, Martin M., Safavi-Naeini, Amir H.
Format: Preprint
Veröffentlicht: 2025
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author Dean, Devin J.
Park, Taewon
Stokowski, Hubert S.
Qi, Luke
Robison, Sam
Hwang, Alexander Y.
Herrmann, Jason
Fejer, Martin M.
Safavi-Naeini, Amir H.
author_facet Dean, Devin J.
Park, Taewon
Stokowski, Hubert S.
Qi, Luke
Robison, Sam
Hwang, Alexander Y.
Herrmann, Jason
Fejer, Martin M.
Safavi-Naeini, Amir H.
contents Optical amplifiers are fundamental to modern photonics, enabling long-distance communications, precision sensing, and quantum information processing. Erbium-doped amplifiers dominate telecommunications but are restricted to specific wavelength bands, while semiconductor amplifiers offer broader coverage but suffer from high noise and nonlinear distortions. Optical parametric amplifiers (OPAs) promise broadband, quantum-limited amplification across arbitrary wavelengths. However, their miniaturization and deployment has been hampered by watt-level power requirements. Here we demonstrate an integrated OPA on thin-film lithium niobate that achieves >17 dB gain with <200 mW input power -- an order of magnitude improvement over previous demonstrations. Our second-harmonic-resonant design enhances both pump generation efficiency (95% conversion) and pump power utilization through recirculation, without sacrificing bandwidth. The resonant architecture increases the effective pump power by nearly an order of magnitude compared to conventional single-pass designs, while also multiplexing the signal and pump. We demonstrate flat near-quantum-limited noise performance over 110 nm. Our low-power architecture enables practical on-chip OPAs for next generation quantum and classical photonics.
format Preprint
id arxiv_https___arxiv_org_abs_2509_26425
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Low-power integrated optical parametric amplification via second-harmonic resonance
Dean, Devin J.
Park, Taewon
Stokowski, Hubert S.
Qi, Luke
Robison, Sam
Hwang, Alexander Y.
Herrmann, Jason
Fejer, Martin M.
Safavi-Naeini, Amir H.
Optics
Optical amplifiers are fundamental to modern photonics, enabling long-distance communications, precision sensing, and quantum information processing. Erbium-doped amplifiers dominate telecommunications but are restricted to specific wavelength bands, while semiconductor amplifiers offer broader coverage but suffer from high noise and nonlinear distortions. Optical parametric amplifiers (OPAs) promise broadband, quantum-limited amplification across arbitrary wavelengths. However, their miniaturization and deployment has been hampered by watt-level power requirements. Here we demonstrate an integrated OPA on thin-film lithium niobate that achieves >17 dB gain with <200 mW input power -- an order of magnitude improvement over previous demonstrations. Our second-harmonic-resonant design enhances both pump generation efficiency (95% conversion) and pump power utilization through recirculation, without sacrificing bandwidth. The resonant architecture increases the effective pump power by nearly an order of magnitude compared to conventional single-pass designs, while also multiplexing the signal and pump. We demonstrate flat near-quantum-limited noise performance over 110 nm. Our low-power architecture enables practical on-chip OPAs for next generation quantum and classical photonics.
title Low-power integrated optical parametric amplification via second-harmonic resonance
topic Optics
url https://arxiv.org/abs/2509.26425