Single-Atom Cavity QED and Opto-Micromechanics

Research output: Contribution to journalArticleResearchpeer review

Authors

  • M. Wallquist
  • K. Hammerer
  • P. Zoller
  • C. Genes
  • M. Ludwig
  • F. Marquardt
  • P. Treutlein
  • J. Ye
  • H. J. Kimble

Research Organisations

View graph of relations

Details

Original languageUndefined/Unknown
JournalPhysical Review A
Publication statusPublished - 22 Dec 2009

Abstract

In a recent publication [K. Hammerer et al., Phys. Rev. Lett. 103, 063005 (2009)] we have shown the possibility to achieve strong coupling of the quantized motion of a micron-sized mechanical system to the motion of a single trapped atom. In the proposed setup the coherent coupling between a SiN membrane and a single atom is mediated by the field of a high finesse cavity, and can be much larger than the relevant decoherence rates. This makes the well-developed tools of CQED (cavity quantum electrodynamics) with single atoms available in the realm of cavity optomechanics. In this paper we elaborate on this scheme and provide detailed derivations and technical comments. Moreover, we give numerical as well as analytical results for a number of possible applications for transfer of squeezed or Fock states from atom to membrane as well as entanglement generation, taking full account of dissipation. In the limit of strong-coupling the preparation and verification of non-classical states of a mesoscopic mechanical system is within reach.

Keywords

    quant-ph, cond-mat.mes-hall

Cite this

Single-Atom Cavity QED and Opto-Micromechanics. / Wallquist, M.; Hammerer, K.; Zoller, P. et al.
In: Physical Review A, 22.12.2009.

Research output: Contribution to journalArticleResearchpeer review

Wallquist, M, Hammerer, K, Zoller, P, Genes, C, Ludwig, M, Marquardt, F, Treutlein, P, Ye, J & Kimble, HJ 2009, 'Single-Atom Cavity QED and Opto-Micromechanics', Physical Review A. https://doi.org/10.1103/PhysRevA.81.023816
Wallquist, M., Hammerer, K., Zoller, P., Genes, C., Ludwig, M., Marquardt, F., Treutlein, P., Ye, J., & Kimble, H. J. (2009). Single-Atom Cavity QED and Opto-Micromechanics. Physical Review A. https://doi.org/10.1103/PhysRevA.81.023816
Wallquist M, Hammerer K, Zoller P, Genes C, Ludwig M, Marquardt F et al. Single-Atom Cavity QED and Opto-Micromechanics. Physical Review A. 2009 Dec 22. doi: 10.1103/PhysRevA.81.023816
Download
@article{5ce317c31a0644e88ac28fa5061903ff,
title = "Single-Atom Cavity QED and Opto-Micromechanics",
abstract = " In a recent publication [K. Hammerer et al., Phys. Rev. Lett. 103, 063005 (2009)] we have shown the possibility to achieve strong coupling of the quantized motion of a micron-sized mechanical system to the motion of a single trapped atom. In the proposed setup the coherent coupling between a SiN membrane and a single atom is mediated by the field of a high finesse cavity, and can be much larger than the relevant decoherence rates. This makes the well-developed tools of CQED (cavity quantum electrodynamics) with single atoms available in the realm of cavity optomechanics. In this paper we elaborate on this scheme and provide detailed derivations and technical comments. Moreover, we give numerical as well as analytical results for a number of possible applications for transfer of squeezed or Fock states from atom to membrane as well as entanglement generation, taking full account of dissipation. In the limit of strong-coupling the preparation and verification of non-classical states of a mesoscopic mechanical system is within reach. ",
keywords = "quant-ph, cond-mat.mes-hall",
author = "M. Wallquist and K. Hammerer and P. Zoller and C. Genes and M. Ludwig and F. Marquardt and P. Treutlein and J. Ye and Kimble, {H. J.}",
year = "2009",
month = dec,
day = "22",
doi = "10.1103/PhysRevA.81.023816",
language = "Undefined/Unknown",
journal = "Physical Review A",
issn = "2469-9926",
publisher = "American Physical Society",

}

Download

TY - JOUR

T1 - Single-Atom Cavity QED and Opto-Micromechanics

AU - Wallquist, M.

AU - Hammerer, K.

AU - Zoller, P.

AU - Genes, C.

AU - Ludwig, M.

AU - Marquardt, F.

AU - Treutlein, P.

AU - Ye, J.

AU - Kimble, H. J.

PY - 2009/12/22

Y1 - 2009/12/22

N2 - In a recent publication [K. Hammerer et al., Phys. Rev. Lett. 103, 063005 (2009)] we have shown the possibility to achieve strong coupling of the quantized motion of a micron-sized mechanical system to the motion of a single trapped atom. In the proposed setup the coherent coupling between a SiN membrane and a single atom is mediated by the field of a high finesse cavity, and can be much larger than the relevant decoherence rates. This makes the well-developed tools of CQED (cavity quantum electrodynamics) with single atoms available in the realm of cavity optomechanics. In this paper we elaborate on this scheme and provide detailed derivations and technical comments. Moreover, we give numerical as well as analytical results for a number of possible applications for transfer of squeezed or Fock states from atom to membrane as well as entanglement generation, taking full account of dissipation. In the limit of strong-coupling the preparation and verification of non-classical states of a mesoscopic mechanical system is within reach.

AB - In a recent publication [K. Hammerer et al., Phys. Rev. Lett. 103, 063005 (2009)] we have shown the possibility to achieve strong coupling of the quantized motion of a micron-sized mechanical system to the motion of a single trapped atom. In the proposed setup the coherent coupling between a SiN membrane and a single atom is mediated by the field of a high finesse cavity, and can be much larger than the relevant decoherence rates. This makes the well-developed tools of CQED (cavity quantum electrodynamics) with single atoms available in the realm of cavity optomechanics. In this paper we elaborate on this scheme and provide detailed derivations and technical comments. Moreover, we give numerical as well as analytical results for a number of possible applications for transfer of squeezed or Fock states from atom to membrane as well as entanglement generation, taking full account of dissipation. In the limit of strong-coupling the preparation and verification of non-classical states of a mesoscopic mechanical system is within reach.

KW - quant-ph

KW - cond-mat.mes-hall

U2 - 10.1103/PhysRevA.81.023816

DO - 10.1103/PhysRevA.81.023816

M3 - Article

JO - Physical Review A

JF - Physical Review A

SN - 2469-9926

ER -

By the same author(s)