Stationary optomechanical entanglement between a mechanical oscillator and its measurement apparatus

Research output: Contribution to journalArticleResearchpeer review

Authors

  • C. Gut
  • K. Winkler
  • J. Hoelscher-Obermaier
  • S. G. Hofer
  • R. Moghadas Nia
  • N. Walk
  • A. Steffens
  • J. Eisert
  • W. Wieczorek
  • J. A. Slater
  • M. Aspelmeyer
  • K. Hammerer

External Research Organisations

  • University of Vienna
  • Freie Universität Berlin (FU Berlin)
  • Austrian Academy of Sciences
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Details

Original languageEnglish
Article number033244
JournalPhys. Rev. Research
Volume2
Issue number3
Publication statusPublished - 12 Aug 2020

Abstract

We provide an argument to infer stationary entanglement between light and a mechanical oscillator based on continuous measurement of light only. We propose an experimentally realizable scheme involving an optomechanical cavity driven by a resonant, continuous-wave field operating in the non-sideband-resolved regime. This corresponds to the conventional configuration of an optomechanical position or force sensor. We show analytically that entanglement between the mechanical oscillator and the output field of the optomechanical cavity can be inferred from the measurement of squeezing in (generalized) Einstein-Podolski-Rosen quadratures of suitable temporal modes of the stationary light field. Squeezing can reach levels of up to 50% of noise reduction below shot noise in the limit of large quantum cooperativity. Remarkably, entanglement persists even in the opposite limit of small cooperativity. Viewing the optomechanical device as a position sensor, entanglement between mechanics and light is an instance of object-apparatus entanglement predicted by quantum measurement theory.

Keywords

    quant-ph, cond-mat.mes-hall

ASJC Scopus subject areas

Cite this

Stationary optomechanical entanglement between a mechanical oscillator and its measurement apparatus. / Gut, C.; Winkler, K.; Hoelscher-Obermaier, J. et al.
In: Phys. Rev. Research, Vol. 2, No. 3, 033244, 12.08.2020.

Research output: Contribution to journalArticleResearchpeer review

Gut, C, Winkler, K, Hoelscher-Obermaier, J, Hofer, SG, Nia, RM, Walk, N, Steffens, A, Eisert, J, Wieczorek, W, Slater, JA, Aspelmeyer, M & Hammerer, K 2020, 'Stationary optomechanical entanglement between a mechanical oscillator and its measurement apparatus', Phys. Rev. Research, vol. 2, no. 3, 033244. https://doi.org/10.1103/physrevresearch.2.033244
Gut, C., Winkler, K., Hoelscher-Obermaier, J., Hofer, S. G., Nia, R. M., Walk, N., Steffens, A., Eisert, J., Wieczorek, W., Slater, J. A., Aspelmeyer, M., & Hammerer, K. (2020). Stationary optomechanical entanglement between a mechanical oscillator and its measurement apparatus. Phys. Rev. Research, 2(3), Article 033244. https://doi.org/10.1103/physrevresearch.2.033244
Gut C, Winkler K, Hoelscher-Obermaier J, Hofer SG, Nia RM, Walk N et al. Stationary optomechanical entanglement between a mechanical oscillator and its measurement apparatus. Phys. Rev. Research. 2020 Aug 12;2(3):033244. doi: 10.1103/physrevresearch.2.033244
Gut, C. ; Winkler, K. ; Hoelscher-Obermaier, J. et al. / Stationary optomechanical entanglement between a mechanical oscillator and its measurement apparatus. In: Phys. Rev. Research. 2020 ; Vol. 2, No. 3.
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abstract = " We provide an argument to infer stationary entanglement between light and a mechanical oscillator based on continuous measurement of light only. We propose an experimentally realizable scheme involving an optomechanical cavity driven by a resonant, continuous-wave field operating in the non-sideband-resolved regime. This corresponds to the conventional configuration of an optomechanical position or force sensor. We show analytically that entanglement between the mechanical oscillator and the output field of the optomechanical cavity can be inferred from the measurement of squeezing in (generalized) Einstein-Podolski-Rosen quadratures of suitable temporal modes of the stationary light field. Squeezing can reach levels of up to 50% of noise reduction below shot noise in the limit of large quantum cooperativity. Remarkably, entanglement persists even in the opposite limit of small cooperativity. Viewing the optomechanical device as a position sensor, entanglement between mechanics and light is an instance of object-apparatus entanglement predicted by quantum measurement theory. ",
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