Scalable phonon-laser arrays with self-organized synchronization
arXiv:2603.29099 · doi:10.1103/knn8-bkn3
Abstract
Quantum mechanical oscillators operating at frequencies up to the GHz regime have been predicted to support phonon lasing -- self-sustained coherent vibrational motion emerging when the effective gain exceeds intrinsic losses. Current phonon-laser proposals face two key limitations, namely: they lack scalability and rely on coupling all oscillators to a common field, which significantly restricts flexibility and prevents selective, on-demand phonon lasing at specific locations. Given that numerous applications and theoretical insights naturally emerge from scalable many-body systems, addressing these limitations is timely. In this Letter, we demonstrate how scalable arrays of individually addressable phonon lasers can be generated through local driving in a quantum many-body Ising-like spin chain. We rigorously establish the resonance conditions under which mechanical oscillators transition from thermal motion to sustained coherent self-oscillation. Unlike previous approaches that rely on a common coupling bus, our proposal employs purely local driving, resulting in an inherently modular and scalable architecture ideally suited for integration into large-scale quantum systems. Additionally, our approach enables on-demand lasing of individual mechanical oscillators at specific sites by simply switching the spin-mechanical coupling interaction on and off, provided specific resonance conditions are satisfied. Notably, our phonon laser array is robust against resonance mismatches and naturally exhibits both pairwise self-organized synchronization and global phase locking near resonance. Finally, we outline an experimental implementation within current experimental capabilities.
16 pages, 6 figures (SM included). We greatly value feedback, as it provides essential guidance for improving and deepening the quality of our work
References in corpus (53)
- Quantum Simulation
- Quantum Communication Through an Unmodulated Spin Chain
- Universal High-Frequency Behavior of Periodically Driven Systems: from Dynamical Stabilization to Floquet Engineering
- Fluxonium: single Cooper pair circuit free of charge offsets
- Analysis of radiation-pressure induced mechanical oscillation of an optical microcavity
- Phonon laser action in a tunable, two-level photonic molecule
- Quantum transduction of optical photons from a superconducting qubit
- Synchronization of Micromechanical Oscillators Using Light
- Superconducting Quantum Computing: A Review
- A single NV defect coupled to a nanomechanical oscillator
- Measures of quantum synchronization in continuous variable systems
- Hybrid circuit cavity quantum electrodynamics with a micromechanical resonator
- Single-photon cavity optomechanics mediated by a quantum two-level system
- Quantum amplification of mechanical oscillator motion
- Photonic Cavity Synchronization of Nanomechanical Oscillators
- Nonreciprocal Phonon Laser
- Fluxonium: an alternative qubit platform for high-fidelity operations
- Spin Correlations as a Probe of Quantum Synchronization in Trapped Ion Phonon-Lasers
- High-Fidelity, Frequency-Flexible Two-Qubit Fluxonium Gates with a Transmon Coupler
- Light-mediated cascaded locking of multiple nano-optomechanical oscillators
- Self-organized synchronization of phonon lasers
- Nonlinear multi-frequency phonon lasers with active levitated optomechanics
- Synchronization of optomechanical cavities by mechanical interaction
- Review: Quantum Metrology and Sensing with Many-Body Systems
- Phonon superradiance and phonon laser effect in nanomagnets
- An optical lattice with sound
- Cavity Optomechanics with Polariton Bose-Einstein Condensates
- Nanomechanical Analog of a Laser: Amplification of Mechanical Oscillations by Stimulated Zeeman Transitions
- Massive quantum systems as interfaces of quantum mechanics and gravity
- Injection locking of an electro-optomechanical device
- Backaction limits on self-sustained optomechanical oscillations
- Floquet time-crystals as sensors of AC fields
- Probing Operator Spreading via Floquet Engineering in a Superconducting Circuit
- A phonon laser in the quantum regime
- A phonon laser utilizing quantum-dot spin states
- Phase-Controlled Phonon Laser
- Quantum electromechanics with levitated nanoparticles
- Integrable quantum many-body sensors for AC field sensing
- Phase noise of self-sustained optomechanical oscillators
- Implementing a synthetic magnetic vector potential in a 2D superconducting qubit array
- A phonon laser in ultra-cold matter
- Optomechanical generation of coherent GHz vibrations in a phononic waveguide
- Generation of atypical hopping and interactions by kinetic driving
- Protected cat states from kinetic driving of a boson gas
- Strong Coupling Optomechanics Mediated by a Qubit in the Dispersive Regime
- Fractional resonances and prethermal states in Floquet systems
- Probing curved spacetime with a distributed atomic processor clock
- Superfluidity from correlations in driven boson systems
- Phonon maser stimulated by spin post-selection
- Generation of Large Amplitude Phonon States in Quantum Acoustics
- Steering spin fluctuations in lattice systems via two-tone Floquet engineering
- Stable many-body resonances in open quantum systems
- Simultaneous photon and phonon lasing in a two-tone driven optomechanical system