Reservoir-Engineered Mechanical Cat States with a Driven Qubit
arXiv:2508.10500 · doi:10.1103/dxzd-nqrv
Abstract
Macroscopic quantum superpositions, such as mechanical Schrödinger cat states, are central to emerging quantum technologies in sensing and bosonic error-correcting codes. We propose a scheme to generate such states by coupling a nanomechanical resonator to a coherently driven two-level system via both transverse and longitudinal interactions. Driving the qubit at twice the oscillator frequency activates resonant two-phonon exchange processes, enabling coherent conversion of drive energy into phonon pairs and their dissipative stabilization. Starting from the full time-dependent Hamiltonian, we derive an effective master equation for the mechanical mode by perturbative elimination of the lossy qubit. The reduced dynamics feature engineered two-phonon loss and a coherent squeezing term, which together drive the resonator into a deterministic Schrödinger-cat state. Our approach requires only a single driven qubit and no auxiliary cavity, offering a scalable and experimentally accessible route to macroscopic quantum superpositions in circuit-QED and related platforms.
References in corpus (62)
- Cavity Optomechanics
- Circuit Quantum Electrodynamics
- Hybrid quantum circuits: Superconducting circuits interacting with other quantum systems
- Beyond the Jaynes-Cummings model: circuit QED in the ultrastrong coupling regime
- Atomic physics and quantum optics using superconducting circuits
- Quantum technologies with hybrid systems
- Fluxonium: single Cooper pair circuit free of charge offsets
- Decoherence in a superconducting quantum bit circuit
- Dynamically protected cat-qubits: a new paradigm for universal quantum computation
- Generation of a superposition of odd photon number states for quantum information networks
- Confining the state of light to a quantum manifold by engineered two-photon loss
- Entanglement and decoherence of a micromechanical resonator via coupling to a Cooper box
- Reservoir-engineered entanglement in optomechanical systems
- Mechanical systems in the quantum regime
- Qubit-oscillator systems in the ultrastrong-coupling regime and their potential for preparing nonclassical states
- Resolved sidebands in a strain-coupled hybrid spin-oscillator system
- Experimental demonstration of a hyper-entangled ten-qubit Schrödinger cat state
- Engineering the quantum states of light in a Kerr-nonlinear resonator by two-photon driving
- Controllable generation of highly nonclassical states from nearly pure squeezed vacua
- Non-Gaussian Quantum States and Where to Find Them
- Generation of Optical Coherent State Superpositions by Number-Resolved Photon Subtraction from Squeezed Vacuum
- Generation of large-amplitude coherent-state superposition via ancilla-assisted photon-subtraction
- Schrödinger cat states of a 16-microgram mechanical oscillator
- Josephson junction-embedded transmission-line resonators: from Kerr medium to in-line transmon
- Tuning the Gap of a Superconducting Flux Qubit
- A Single Photon Can Simultaneously Excite Two or More Atoms
- Remote generation of magnon Schrödinger cat state via magnon-photon entanglement
- Generation of optical Schrödinger cat states in intense laser-matter interactions
- Generating superposition of up-to three photons for continuous variable quantum information processing
- Optical synthesis of large-amplitude squeezed coherent-state superpositions with minimal resources
- Quantum state preparation, tomography, and entanglement of mechanical oscillators
- Entanglement between Distant Macroscopic Mechanical and Spin Systems
- Probing tiny motions of nanomechanical resonators: classical or quantum mechanical?
- Deterministic protocol for mapping a qubit to coherent state superpositions in a cavity
- Spin-motion entanglement and state diagnosis with squeezed oscillator wavepackets
- Nonlinear quantum metrology using coupled nanomechanical resonators
- Loss-tolerant quantum enhanced metrology and state engineering via the reverse Hong-Ou-Mandel effect
- Hybrid systems for the generation of non-classical mechanical states via quadratic interactions
- Generation of macroscopic Schrödinger-cat states in qubit-oscillator systems
- A flying Schrödinger cat in multipartite entangled states
- Generation and detection of non-Gaussian phonon-added coherent states in optomechanical systems
- Ground state cooling of a nanomechanical resonator via a Cooper pair box qubit
- Schrödinger cat states of a nuclear spin qudit in silicon
- Classical to quantum transition of a driven nonlinear nanomechanical resonator
- Unconditional preparation of nonclassical states via linear-and-quadratic optomechanics
- Coupling spins to nanomechanical resonators: Toward quantum spin-mechanics
- Non-Gaussian mechanical motion via single and multi-phonon subtraction from a thermal state
- Optomechanical generation of a mechanical catlike state by phonon subtraction
- A Cooper-Pair Box Coupled to Two Resonators: An Architecture for a Quantum Refrigerator
- Linear-and-quadratic reservoir engineering of non-Gaussian states
- Detection of qubit-oscillator entanglement in nanoelectromechanical systems
- Amplified and tunable transverse and longitudinal spin-photon coupling in hybrid circuit-QED
- Nonlinear Sideband Cooling to a Cat State of Motion
- Minutes-scale Schr{ö}dinger-cat state of spin-5/2 atoms
- Generation of macroscopic entangled cat states in a molecular cavity-QED system
- Schrödinger cats in quantum-dot--cavity systems
- Fast Amplification and Rephasing of Entangled Cat States in a Qubit-Oscillator System
- Preparing Schrödinger cat states in a microwave cavity using a neural network
- Hot Schrödinger Cat States
- Resonant Schrödinger Cat States in Circuit Quantum Electrodynamics
- Nonclassical photon statistics in two-tone continuously driven optomechanics
- Longitudinal coupling between electrically driven spin-qubits and a resonator