Macroscopic entanglement between localized domain walls inside a cavity
arXiv:2508.03450 · doi:10.1103/cpxb-f72k
Abstract
We present a scheme for generating stable and tunable entanglement between two localized Bloch domain walls in nanomagnetic strips kept inside a chiral optical cavity. The entanglement is mediated by the effective optomechanical interaction between the cavity photons and the two macroscopic, collective modes of the pinned domain walls. By controlling the pinning potential and optical driving frequency, the robust, steady-state entanglement between the two macroscopic domain walls can survive beyond the typical milli-Kelvin temperature range.
15 pages, 7 figures
References in corpus (45)
- Cavity Optomechanics
- Introduction to Quantum Noise, Measurement and Amplification
- Current-driven dynamics of chiral ferromagnetic domain walls
- Hybrid quantum systems based on magnonics
- Quantum magnonics: when magnon spintronics meets quantum information science
- Non-Hermitian Topology and Exceptional-Point Geometries
- Exceptional Points of Non-hermitian Operators
- Entanglement-based single-shot detection of a single magnon with a superconducting qubit
- Microscopic approach to current-driven domain wall dynamics
- Resolving magnon number states in quantum magnonics
- Quantum entanglement between two magnon modes via Kerr nonlinearity
- Is Entanglement Monogamous?
- Entangling two magnon modes via magnetostrictive interaction
- Quantum control of a single magnon in a macroscopic spin system
- Monogamy inequality for distributed Gaussian entanglement
- Dissipative Dynamics and Phase Transitions in Fermionic Systems
- Optomechanical circuits for nanomechanical continuous variable quantum state processing
- Enhancement of antiferromagnetic magnon-magnon entanglement by cavity cooling
- Coherent coupling of two remote magnonic resonators mediated by superconducting circuits
- Imaging non-collinear antiferromagnetic textures via single spin relaxometry
- Pinning and movement of individual nanoscale magnetic skyrmions via defects
- QuTiP 5: The Quantum Toolbox in Python
- Chiral domain walls of MnSn and their memory
- Macroscopic entanglement of two magnon modes via quantum correlated microwave fields
- Skyrmion Qubits: Challenges For Future Quantum Computing Applications
- Strong coupling in chiral cavities: nonperturbative framework for enantiomer discrimination
- Perspective on unconventional computing using magnetic skyrmions
- Nonlocal magnon entanglement generation in coupled hybrid cavity systems
- Controlling Multimode Optomechanical Interactions via Interference
- Magnon qubit on double Bose-Einstein condensate
- Colloquium: Quantum Properties and Functionalities of Magnetic Skyrmions
- Annihilation and Control of Chiral Domain Walls with Magnetic Fields
- Magnon-Skyrmion Hybrid Quantum Systems: Tailoring Interactions via Magnons
- Anomalous Long-Distance Coherence in Critically-Driven Cavity Magnonics
- Quantum Skyrmion Lattices in Heisenberg Ferromagnets
- Probing the Pinning Strength of Magnetic Vortex Cores with sub-nm Resolution
- Quantum computing on magnetic racetracks with flying domain wall qubits
- Resonance-dominant optomechanical entanglement in open quantum systems
- Cavity Optomechanics of Topological Spin Textures in Magnetic Insulators
- Bloch line dynamics within moving domain walls in 3D ferromagnets
- Macroscopic Bell state between a millimeter-sized spin system and a superconducting qubit
- Dissipative phase transitions in optomechanical systems
- Density Matrix Renormalization Group Study of Domain Wall Qubits
- Topological Spin Textures Enabling Quantum Transmission
- Tunable phonon-driven magnon-magnon entanglement at room temperature