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Spectral synthesis of multimode lasers to the Fourier limit in integrated Fabry–Perot diamond resonators

Fourier-limited nanosecond pulses featuring narrow spectral bandwidths are required for applications in spectroscopy, sensing, and quantum optics. Here, we demonstrate a direct and simple route for the generation of single-frequency light relying on phonon-resonant Raman interactions within a monoli...

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Autores principales: Granados, Eduardo, Granados, Camilo, Ahmed, Rizwan, Chrysalidis, Katerina, Fedosseev, Valentin N, Marsh, Bruce A, Wilkins, Shane G, Mildren, Richard P, Spence, David J
Lenguaje:eng
Publicado: 2022
Materias:
Acceso en línea:https://dx.doi.org/10.1364/OPTICA.447380
http://cds.cern.ch/record/2811414
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author Granados, Eduardo
Granados, Camilo
Ahmed, Rizwan
Chrysalidis, Katerina
Fedosseev, Valentin N
Marsh, Bruce A
Wilkins, Shane G
Mildren, Richard P
Spence, David J
author_facet Granados, Eduardo
Granados, Camilo
Ahmed, Rizwan
Chrysalidis, Katerina
Fedosseev, Valentin N
Marsh, Bruce A
Wilkins, Shane G
Mildren, Richard P
Spence, David J
author_sort Granados, Eduardo
collection CERN
description Fourier-limited nanosecond pulses featuring narrow spectral bandwidths are required for applications in spectroscopy, sensing, and quantum optics. Here, we demonstrate a direct and simple route for the generation of single-frequency light relying on phonon-resonant Raman interactions within a monolithic diamond resonator. The technique enables the production of nearly Fourier-limited nanosecond optical pulses (15 ns), with an overall spectral bandwidth of down to 180 MHz, which is nearly two orders of magnitude narrower than the pump laser linewidth used (12 GHz). The power conversion efficiency was 47%, yielding a power spectral brightness enhancement of >50× compared to the pump. Our results pave the way to the integration of pulsed widely tunable, power scalable, narrow linewidth light sources into integrated photonic platforms. Furthermore, the device does not need elaborate mechanical feedback loops for cavity length or frequency stabilization, or any additional optical components.
id cern-2811414
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2022
record_format invenio
spelling cern-28114142023-03-30T14:57:04Zdoi:10.1364/OPTICA.447380http://cds.cern.ch/record/2811414engGranados, EduardoGranados, CamiloAhmed, RizwanChrysalidis, KaterinaFedosseev, Valentin NMarsh, Bruce AWilkins, Shane GMildren, Richard PSpence, David JSpectral synthesis of multimode lasers to the Fourier limit in integrated Fabry–Perot diamond resonatorsNuclear Physics - ExperimentFourier-limited nanosecond pulses featuring narrow spectral bandwidths are required for applications in spectroscopy, sensing, and quantum optics. Here, we demonstrate a direct and simple route for the generation of single-frequency light relying on phonon-resonant Raman interactions within a monolithic diamond resonator. The technique enables the production of nearly Fourier-limited nanosecond optical pulses (15 ns), with an overall spectral bandwidth of down to 180 MHz, which is nearly two orders of magnitude narrower than the pump laser linewidth used (12 GHz). The power conversion efficiency was 47%, yielding a power spectral brightness enhancement of >50× compared to the pump. Our results pave the way to the integration of pulsed widely tunable, power scalable, narrow linewidth light sources into integrated photonic platforms. Furthermore, the device does not need elaborate mechanical feedback loops for cavity length or frequency stabilization, or any additional optical components.Fourier-limited nanosecond pulses featuring narrow spectral bandwidths are required for applications in spectroscopy, sensing, and quantum optics. Here, we demonstrate a direct and simple route for the generation of single-frequency light relying on phonon-resonant Raman interactions within a monolithic diamond resonator. The technique enables the production of nearly Fourier-limited nanosecond optical pulses (15 ns), with an overall spectral bandwidth of down to 180 MHz, which is nearly two orders of magnitude narrower than the pump laser linewidth used (12 GHz). The power conversion efficiency was 47%, yielding a power spectral brightness enhancement of >50× compared to the pump. Our results pave the way to the integration of pulsed widely tunable, power scalable, narrow linewidth light sources into integrated photonic platforms. Furthermore, the device does not need elaborate mechanical feedback loops for cavity length or frequency stabilization, or any additional optical components.oai:cds.cern.ch:28114142022
spellingShingle Nuclear Physics - Experiment
Granados, Eduardo
Granados, Camilo
Ahmed, Rizwan
Chrysalidis, Katerina
Fedosseev, Valentin N
Marsh, Bruce A
Wilkins, Shane G
Mildren, Richard P
Spence, David J
Spectral synthesis of multimode lasers to the Fourier limit in integrated Fabry–Perot diamond resonators
title Spectral synthesis of multimode lasers to the Fourier limit in integrated Fabry–Perot diamond resonators
title_full Spectral synthesis of multimode lasers to the Fourier limit in integrated Fabry–Perot diamond resonators
title_fullStr Spectral synthesis of multimode lasers to the Fourier limit in integrated Fabry–Perot diamond resonators
title_full_unstemmed Spectral synthesis of multimode lasers to the Fourier limit in integrated Fabry–Perot diamond resonators
title_short Spectral synthesis of multimode lasers to the Fourier limit in integrated Fabry–Perot diamond resonators
title_sort spectral synthesis of multimode lasers to the fourier limit in integrated fabry–perot diamond resonators
topic Nuclear Physics - Experiment
url https://dx.doi.org/10.1364/OPTICA.447380
http://cds.cern.ch/record/2811414
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