Observation of Brillouin optomechanical strong coupling with an 11 GHz mechanical mode

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Observation of Brillouin optomechanical strong coupling with an 11 GHz mechanical mode. / Enzian, G.; Szczykulska, M.; Silver, J.; Del Bino, L.; Zhang, S.; Walmsley, I. A.; Del'Haye, P.; Vanner, M. R.

I: Optica, Bind 6, Nr. 1, 20.01.2019, s. 7-14.

Publikation: Bidrag til tidsskriftTidsskriftartikelForskningfagfællebedømt

Harvard

Enzian, G, Szczykulska, M, Silver, J, Del Bino, L, Zhang, S, Walmsley, IA, Del'Haye, P & Vanner, MR 2019, 'Observation of Brillouin optomechanical strong coupling with an 11 GHz mechanical mode', Optica, bind 6, nr. 1, s. 7-14. https://doi.org/10.1364/OPTICA.6.000007

APA

Enzian, G., Szczykulska, M., Silver, J., Del Bino, L., Zhang, S., Walmsley, I. A., Del'Haye, P., & Vanner, M. R. (2019). Observation of Brillouin optomechanical strong coupling with an 11 GHz mechanical mode. Optica, 6(1), 7-14. https://doi.org/10.1364/OPTICA.6.000007

Vancouver

Enzian G, Szczykulska M, Silver J, Del Bino L, Zhang S, Walmsley IA o.a. Observation of Brillouin optomechanical strong coupling with an 11 GHz mechanical mode. Optica. 2019 jan. 20;6(1):7-14. https://doi.org/10.1364/OPTICA.6.000007

Author

Enzian, G. ; Szczykulska, M. ; Silver, J. ; Del Bino, L. ; Zhang, S. ; Walmsley, I. A. ; Del'Haye, P. ; Vanner, M. R. / Observation of Brillouin optomechanical strong coupling with an 11 GHz mechanical mode. I: Optica. 2019 ; Bind 6, Nr. 1. s. 7-14.

Bibtex

@article{39872682c66b4578a34b67f2e46fb3db,
title = "Observation of Brillouin optomechanical strong coupling with an 11 GHz mechanical mode",
abstract = "Achieving cavity-optomechanical strong coupling with high-frequency phonons provides a rich avenue for quantum technology development, including quantum state transfer, memory, and transduction, as well as enabling several fundamental studies of macroscopic phononic degrees of freedom. Reaching such coupling with GHz mechanical modes, however, has proved challenging, with a prominent hindrance being material- and surface-induced optical absorption in many materials. Here, we circumvent these challenges and report the observation of optomechanical strong coupling to a high-frequency (11 GHz) mechanical mode of a fused-silica whispering-gallery microresonator via the electrostrictive Brillouin interaction. Using an optical heterodyne detection scheme, the anti-Stokes light back-scattered from the resonator is measured, and normal-mode splitting and an avoided crossing are observed in the recorded spectra, providing unambiguous signatures of strong coupling. The optomechanical coupling rate reaches values as high as G/2 pi=39 MHz through the use of an auxiliary pump resonance, where the coupling dominates both optical (kappa/2 pi = 3 MHz) and mechanical (gamma(m)/2 pi = 21 MHz) amplitude decay rates. Our findings provide a promising new approach for optical quantum control using light and sound.",
keywords = "GAIN SPECTRUM, OPTICAL-FIBER, SCATTERING, LIGHT",
author = "G. Enzian and M. Szczykulska and J. Silver and {Del Bino}, L. and S. Zhang and Walmsley, {I. A.} and P. Del'Haye and Vanner, {M. R.}",
year = "2019",
month = jan,
day = "20",
doi = "10.1364/OPTICA.6.000007",
language = "English",
volume = "6",
pages = "7--14",
journal = "Optica",
issn = "2334-2536",
publisher = "The Optical Society (OSA)",
number = "1",

}

RIS

TY - JOUR

T1 - Observation of Brillouin optomechanical strong coupling with an 11 GHz mechanical mode

AU - Enzian, G.

AU - Szczykulska, M.

AU - Silver, J.

AU - Del Bino, L.

AU - Zhang, S.

AU - Walmsley, I. A.

AU - Del'Haye, P.

AU - Vanner, M. R.

PY - 2019/1/20

Y1 - 2019/1/20

N2 - Achieving cavity-optomechanical strong coupling with high-frequency phonons provides a rich avenue for quantum technology development, including quantum state transfer, memory, and transduction, as well as enabling several fundamental studies of macroscopic phononic degrees of freedom. Reaching such coupling with GHz mechanical modes, however, has proved challenging, with a prominent hindrance being material- and surface-induced optical absorption in many materials. Here, we circumvent these challenges and report the observation of optomechanical strong coupling to a high-frequency (11 GHz) mechanical mode of a fused-silica whispering-gallery microresonator via the electrostrictive Brillouin interaction. Using an optical heterodyne detection scheme, the anti-Stokes light back-scattered from the resonator is measured, and normal-mode splitting and an avoided crossing are observed in the recorded spectra, providing unambiguous signatures of strong coupling. The optomechanical coupling rate reaches values as high as G/2 pi=39 MHz through the use of an auxiliary pump resonance, where the coupling dominates both optical (kappa/2 pi = 3 MHz) and mechanical (gamma(m)/2 pi = 21 MHz) amplitude decay rates. Our findings provide a promising new approach for optical quantum control using light and sound.

AB - Achieving cavity-optomechanical strong coupling with high-frequency phonons provides a rich avenue for quantum technology development, including quantum state transfer, memory, and transduction, as well as enabling several fundamental studies of macroscopic phononic degrees of freedom. Reaching such coupling with GHz mechanical modes, however, has proved challenging, with a prominent hindrance being material- and surface-induced optical absorption in many materials. Here, we circumvent these challenges and report the observation of optomechanical strong coupling to a high-frequency (11 GHz) mechanical mode of a fused-silica whispering-gallery microresonator via the electrostrictive Brillouin interaction. Using an optical heterodyne detection scheme, the anti-Stokes light back-scattered from the resonator is measured, and normal-mode splitting and an avoided crossing are observed in the recorded spectra, providing unambiguous signatures of strong coupling. The optomechanical coupling rate reaches values as high as G/2 pi=39 MHz through the use of an auxiliary pump resonance, where the coupling dominates both optical (kappa/2 pi = 3 MHz) and mechanical (gamma(m)/2 pi = 21 MHz) amplitude decay rates. Our findings provide a promising new approach for optical quantum control using light and sound.

KW - GAIN SPECTRUM

KW - OPTICAL-FIBER

KW - SCATTERING

KW - LIGHT

U2 - 10.1364/OPTICA.6.000007

DO - 10.1364/OPTICA.6.000007

M3 - Journal article

VL - 6

SP - 7

EP - 14

JO - Optica

JF - Optica

SN - 2334-2536

IS - 1

ER -

ID: 281755538