An Autonomous Stabilizer for Incompressible Photon Fluids and Solids
arXiv:1701.04544 · doi:10.1103/PhysRevA.95.043811
Abstract
We suggest a simple approach to populate photonic quantum materials at non-zero chemical potential and near-zero temperature. Taking inspiration from forced evaporation in cold-atom experiments, the essential ingredients for our low-entropy thermal reservoir are (a) inter-particle interactions, and (b) energy-dependent loss. The resulting thermal reservoir may then be coupled to a broad class of Hamiltonian systems to produce low-entropy quantum phases. We present an idealized picture of such a reservoir, deriving the scaling of reservoir entropy with system parameters, and then propose several practical implementations using only standard circuit quantum electrodynamics tools, and extract the fundamental performance limits. Finally, we explore, both analytically and numerically, the coupling of such a thermalizer to the paradigmatic Bose-Hubbard chain, where we employ it to stabilize an Mott phase. In this case, the performance is limited by the interplay of dynamically arrested thermalization of the Mott insulator and finite heat capacity of the thermalizer, characterized by its repumping rate. This work explores a new approach to preparation of quantum phases of strongly interacting photons, and provides a potential route to topologically protected phases that are difficult to reach through adiabatic evolution.
11 Figures, 8 Figures
References in corpus (22)
- Quantum phase transition from a superfluid to a Mott insulator in a gas of ultracold atoms
- Direct observation of Anderson localization of matter-waves in a controlled disorder
- Quantum States and Phases in Driven Open Quantum Systems with Cold Atoms
- Quantum Simulation of Antiferromagnetic Spin Chains in an Optical Lattice
- Resolving photon number states in a superconducting circuit
- Exciton-polariton condensates
- Superconducting qubit in waveguide cavity with coherence time approaching 0.1ms
- Controlling the spontaneous emission of a superconducting transmon qubit
- Cooperative atom-light interaction in a blockaded Rydberg ensemble
- Fast Reset and Suppressing Spontaneous Emission of a Superconducting Qubit
- Using Sideband Transitions for Two-Qubit Operations in Superconducting Circuits
- Low-Disorder Microwave Cavity Lattices for Quantum Simulation with Photons
- Interferometric probes of many-body localization
- Quantum memories based on engineered dissipation
- Dissipative preparation of Chern insulators
- Bose-Einstein condensates in 1D optical lattices: compressibility, Bloch bands and elementary excitations
- Induced self-stabilization in fractional quantum Hall states of light
- Quantum gas microscopy with spin, atom-number and multi-layer readout
- Topological growing of Laughlin states in synthetic gauge fields
- Dissipation-induced continuous quantum error correction for superconducting circuits
- Enlarging and cooling the Néel state in an optical lattice
- Passive correction of quantum logical errors in a driven, dissipative system: a blueprint for an analog quantum code fabric
Cited by in corpus (30)
- A Dissipatively Stabilized Mott Insulator of Photons
- Quantum electrodynamics in a topological waveguide
- Universal stabilization of a parametrically coupled qubit
- Quantum Synchronization Blockade: Energy Quantization hinders Synchronization of Identical Oscillators
- Quarter-Flux Hofstadter Lattice in Qubit-Compatible Microwave Cavity Array
- Critical Response of a Quantum van der Pol Oscillator
- Phase diagram of incoherently driven strongly correlated photonic lattices
- Stabilizing strongly correlated photon fluids with non-Markovian reservoirs
- The upside of noise: engineered dissipation as a resource in superconducting circuits
- Emergent Finite Frequency Criticality of Driven-Dissipative Correlated Lattice Bosons
- Disorder-Assisted Assembly of Strongly Correlated Fluids of Light
- Many-Body Open Quantum Systems
- Reservoir engineering of bosonic lattices using chiral symmetry and localized dissipation
- Reservoir engineering with localized dissipation: dynamics and pre-thermalization
- Electric fields for light: Propagation of microwave photons along a synthetic dimension
- Coherent generation of photonic fractional quantum Hall states in a cavity and the search for anyonic quasiparticles
- Hardware-efficient fermionic simulation with a cavity-QED system
- Quantum simulation of zero temperature quantum phases and incompressible states of light via non-Markovian reservoir engineering techniques
- Stabilizing arrays of photonic cat states via spontaneous symmetry breaking
- Stabilizing the Laughlin state of light: dynamics of hole fractionalization
- Probing Site-Resolved Current in Strongly Interacting Superconducting Circuit Lattices
- On the stability of dissipatively-prepared Mott insulators of photons
- Improved autonomous error correction using variable dissipation in small logical qubit architectures
- Localization to delocalization transition in a driven nonlinear cavity array
- Entanglement dynamics in dissipative photonic Mott insulators
- An algorithm for tailoring a quadratic lattice with a local squeezed reservoir to stabilize generic chiral states with non-local entanglement
- Permanent spin currents in cavity-qubit systems
- Optomechanical approach to controlling the temperature and chemical potential of light
- Stability via symmetry breaking in interacting driven systems
- Protocol for autonomous rearrangement of cold atoms into low-entropy configurations