Kerr enhanced backaction cooling in magnetomechanics
arXiv:2202.13228 · doi:10.1103/PhysRevLett.130.033601
Abstract
Optomechanics is a prime example of light matter interaction, where photons directly couple to phonons, allowing to precisely control and measure the state of a mechanical object. This makes it a very appealing platform for testing fundamental physics or for sensing applications. Usually, such mechanical oscillators are in highly excited thermal states and require cooling to the mechanical ground state for quantum applications, which is often accomplished by utilising optomechanical backaction. However, while massive mechanical oscillators are desirable for many tasks, their frequency usually decreases below the cavity linewidth, significantly limiting the methods that can be used to efficiently cool. Here, we demonstrate a novel approach relying on an intrinsically nonlinear cavity to backaction-cool a low frequency mechanical oscillator. We experimentally demonstrate outperforming an identical, but linear, system by more than one order of magnitude. Furthermore, our theory predicts that with this approach we can also surpass the standard cooling limit of a linear system. By exploiting a nonlinear cavity, our approach enables efficient cooling of a wider range of optomechanical systems, opening new opportunities for fundamental tests and sensing.
5 pages, 4 figures
References in corpus (15)
- Sideband Cooling Micromechanical Motion to the Quantum Ground State
- Quantum Theory of Cavity-Assisted Sideband Cooling of Mechanical Motion
- Theory of ground state cooling of a mechanical oscillator using dynamical back-action
- Testing the limits of quantum mechanical superpositions
- Efficient and robust analysis of complex scattering data under noise in microwave resonators
- Sideband Cooling Beyond the Quantum Limit with Squeezed Light
- Quantum Noise Interference and Back-action Cooling in Cavity Nanomechanics
- Laser noise in cavity-optomechanical cooling and thermometry
- Approaching the motional ground state of a 10 kg object
- Qantum theory of optomechanical cooling
- Intracavity-squeezed optomechanical cooling
- Quantum analysis of a nonlinear microwave cavity-embedded dc SQUID displacement detector
- Four-wave-cooling to the single phonon level in Kerr optomechanics
- Superconducting electro-mechanics to test Diósi-Penrose effects of general relativity in massive superpositions
- Mechanical frequency control in inductively coupled electromechanical systems
Cited by in corpus (19)
- Superconducting microsphere magnetically levitated in an anharmonic potential with integrated magnetic readout
- Magnomechanical backaction corrections due to coupling to higher order Walker modes and Kerr nonlinearities
- Optimal quantum parametric feedback cooling
- Kerr Nonlinearity Induced Nonreciprocity in dissipatively coupled resonators
- Quasibound states in the continuum in photonic-crystal-based optomechanical microcavities
- Remote sensing of a levitated superconductor with a flux-tunable microwave cavity
- Kerr enhanced optomechanical cooling in the unresolved sideband regime
- Strong Intrinsic Longitudinal Coupling in Circuit Quantum Electrodynamics
- A general approach to backaction-evading receivers with magnetomechanical and electromechanical sensors
- Optomechanical Backaction in the Bistable Regime
- Single-photon induced instabilities in a cavity electromechanical device
- Radiation pressure backaction on a hexagonal boron nitride nanomechanical resonator
- Intrinsic Kerr amplification for microwave electromechanics
- Kerr-enhanced optomechanical entanglement generation via reservoir design
- Irreversibility in an optical parametric driven optomechanical system
- Energy transfer between gravitational waves and quantum matter
- Mechanical Squeezed-Fock Qubit: Towards Quantum Weak-Force Sensing
- Echoes in a parametrically perturbed Kerr-nonlinear oscillator
- A Sub-kHz Mechanical Resonator Passively Cooled to 6 mK