Stationary optomagnonic entanglement and magnon-to-optics quantum state transfer via opto-magnomechanics
arXiv:2206.05688 · doi:10.1088/2058-9565/aca3cf
Abstract
We show how to prepare a steady-state entangled state between magnons and optical photons in an opto-magnomechanical configuration, where a mechanical vibration mode couples to a magnon mode in a ferrimagnet by the dispersive magnetostrictive interaction, and to an optical cavity by the radiation pressure. We find that, by appropriately driving the magnon mode and the cavity to simultaneously activate the magnomechanical Stokes and the optomechanical anti-Stokes scattering, a stationary optomagnonic entangled state can be created. We further show that, by activating the magnomechanical state-swap interaction and subsequently sending a weak red-detuned optical pulse to drive the cavity, the magnonic state can be read out in the cavity output field of the pulse via the mechanical transduction. The demonstrated entanglement and state-readout protocols in such a novel opto-magnomechanical configuration allow us to optically control, prepare, and read out quantum states of collective spin excitations in solids, and provide promising opportunities for the study of quantum magnonics, macroscopic quantum states, and magnonic quantum information processing.
Accepted to Quantum Sci. Technol
References in corpus (23)
- Strong dispersive coupling of a high finesse cavity to a micromechanical membrane
- Optomechanical entanglement between a movable mirror and a cavity field
- Strongly coupled magnons and cavity microwave photons
- Hybridizing ferromagnetic magnons and microwave photons in the quantum limit
- Observation of strong coupling between a micromechanical resonator and an optical cavity field
- A Spin Entanglement Witness for Quantum Gravity
- Gravitationally-induced entanglement between two massive particles is sufficient evidence of quantum effects in gravity
- Hybrid quantum systems based on magnonics
- Quantum magnonics: when magnon spintronics meets quantum information science
- High Cooperativity Cavity QED with Magnons at Microwave Frequencies
- Spin Pumping in Electrodynamically Coupled Magnon-Photon Systems
- Cavity Magnonics
- Triple-resonant Brillouin light scattering in magneto-optical cavities
- Hybrid magnonics: physics, circuits and applications for coherent information processing
- Mechanical Bistability in Kerr-modified Cavity Magnomechanics
- Remote generation of magnon Schrödinger cat state via magnon-photon entanglement
- Dynamical Backaction Magnomechanics
- Remote magnon entanglement between two massive ferrimagnetic spheres via cavity optomagnonics
- Optical sensing of magnons via the magnetoelastic displacement
- Proposal for a Bell test in cavity optomagnonics
- Polarization dependent scattering in cavity optomagnonics
- Anti-PT-symmetry-enhanced interconversion between microwave and optical fields
- Superfluid-Mott insulator quantum phase transition in a cavity optomagnonic system
Cited by in corpus (15)
- Cavity magnomechanics: from classical to quantum
- Microwave-optics Entanglement via Cavity Optomagnomechanics
- Entangling ferrimagnetic magnons with an atomic ensemble via opto-magnomechanics
- Controllable Fano-type optical response and four-wave mixing via magnetoelastic coupling in a opto-magnomechanical system
- Entangling mechanical vibrations of two massive ferrimagnets by fully exploiting the nonlinearity of magnetostriction
- Magnomechanical backaction corrections due to coupling to higher order Walker modes and Kerr nonlinearities
- Strong squeezing of microwave output fields via reservoir-engineered cavity magnomechanics
- Magnon squeezing via reservoir-engineered optomagnomechanics
- Synchronization by Magnetostriction
- Magnomechanically controlled Goos-Hänchen shift in cavity QED
- Generation of optomicrowave and optomagnonic entanglements in cascaded optomagnomechanical systems
- Nonreciprocal Macroscopic Entanglement through Magnon Squeezing in a Cavity Magnomechanics
- Flexible generation of optomagnonic quantum entanglement and quantum coherence difference in double-cavity-optomagnomechanical system
- Generation of mechanical cat-like states via optomagnomechanics
- Phase-switchable nonreciprocal entanglement via magnon squeezing in ring-cavity optomagnomechanics