English

Coherent feedback cooling of a nanomechanical membrane with atomic spins

Quantum Physics 2022-03-11 v2 Atomic Physics Optics

Abstract

Coherent feedback stabilises a system towards a target state without the need of a measurement, thus avoiding the quantum backaction inherent to measurements. Here, we employ optical coherent feedback to remotely cool a nanomechanical membrane using atomic spins as a controller. Direct manipulation of the atoms allows us to tune from strong-coupling to an overdamped regime. Making use of the full coherent control offered by our system, we perform spin-membrane state swaps combined with stroboscopic spin pumping to cool the membrane in a room-temperature environment to T=216mK{T}={216}\,\mathrm{mK} (nˉm=2.3×103\bar{n}_{m} = 2.3\times 10^3 phonons) in 200μs{200}\,\mathrm{{\mu}s}. We furthermore observe and study the effects of delayed feedback on the cooling performance. Starting from a cryogenically pre-cooled membrane, this method would enable cooling of the mechanical oscillator close to its quantum mechanical ground state and the preparation of nonclassical states.

Keywords

Cite

@article{arxiv.2111.09802,
  title  = {Coherent feedback cooling of a nanomechanical membrane with atomic spins},
  author = {Gian-Luca Schmid and Chun Tat Ngai and Maryse Ernzer and Manel Bosch Aguilera and Thomas M. Karg and Philipp Treutlein},
  journal= {arXiv preprint arXiv:2111.09802},
  year   = {2022}
}

Comments

13 pages, 8 figures