4.6 Article

Nonreciprocal ground-state cooling of multiple mechanical resonators

期刊

PHYSICAL REVIEW A
卷 102, 期 1, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevA.102.011502

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资金

  1. National Natural Science Foundation of China [11505055, 11822501, 11774087, 11935006]
  2. Natural Science Foundation of Hunan Province, China [2017JJ1021]
  3. Hunan Science and Technology Plan Project [2017XK2018]
  4. Hunan Provincial Postgraduate Research and Innovation project [CX2018B290]
  5. Scientific Research Fund of Hunan Provincial Education Department [18A007]
  6. NNSFC [11974009]
  7. European Union Horizon 2020 Programme for Research and Innovation [732894]
  8. Project QuaSeRT - QuantERA ERA-NET Cofund in Quantum Technologies
  9. NTT Research
  10. Army Research Office (ARO) [W911NF-18-1-0358]
  11. Japan Science and Technology Agency (JST) (via the CREST Grant) [JPMJCR1676]
  12. Japan Society for the Promotion of Science (JSPS) (via the KAKENHI Grant) [JP20H00134]
  13. Japan Society for the Promotion of Science (JSPS) (JSPS-RFBR Grant) [JPJSBP120194828]
  14. Foundational Questions Institute Fund (FQXi) [FQXi-IAF19-06]
  15. Silicon Valley Community Foundation

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The simultaneous ground-state cooling of multiple degenerate or near-degenerate mechanical modes coupled to a common cavity-field mode has become an outstanding challenge in cavity optomechanics. This is because the dark modes formed by these mechanical modes decouple from the cavity mode and prevent extracting energy from the dark modes through the cooling channel of the cavity mode. Here we propose a universal and reliable dark-mode-breaking method to realize the simultaneous ground-state cooling of two degenerate or nondegenerate mechanical modes by introducing a phase-dependent phonon-exchange interaction, which is used to form a loop-coupled configuration. We find an asymmetrical cooling performance for the two mechanical modes and expound this phenomenon based on the nonreciprocal energy transfer mechanism, which leads to the directional flow of phonons between the two mechanical modes. We also generalize this method to cool multiple mechanical modes. The physical mechanism in this cooling scheme has general validity and this method can be extended to break other dark-mode and dark-state effects in physics.

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