Quantum metrology with boundary time crystals
arXiv:2301.02103 · doi:10.1038/s42005-023-01423-6
Abstract
Quantum sensing is one of the arenas that exemplifies the superiority of quantum technologies over their classical counterparts. Such superiority, however, can be diminished due to unavoidable noise and decoherence of the probe. Thus, metrological strategies to fight against or profit from decoherence are highly desirable. This is the case of certain types of decoherence-driven many-body systems supporting dissipative phase transitions, which might be helpful for sensing. Boundary time crystals are exotic dissipative phases of matter in which the time-translational symmetry is broken, and long-lasting oscillations emerge in open quantum systems at the thermodynamic limit. We show that the transition from a symmetry unbroken into a boundary time crystal phase, described by a second-order transition, reveals quantum-enhanced sensitivity quantified through quantum Fisher information. We also determine the critical exponents of the system and establish their relationship. Our scheme is indeed a demonstration of harnessing decoherence for achieving quantum-enhanced sensitivity. From a practical perspective, it has the advantage of being independent of initialization and can be captured by a simple measurement.
7 pages main text, 5 figures
References in corpus (22)
- QuTiP 2: A Python framework for the dynamics of open quantum systems
- Absence of Quantum Time Crystals
- Quantum criticality as a resource for quantum estimation
- Mixed-state fidelity and quantum criticality at finite temperature
- Geometry of quantum phase transitions
- Enhanced metrology at the critical point of a many-body Rydberg atomic system
- Optimal quantum estimation in spin systems at criticality
- Quantum Kalman Filtering and the Heisenberg Limit in Atomic Magnetometry
- Quantum metrology in Lipkin-Meshkov-Glick critical systems
- Optical interferometry in the presence of large phase diffusion
- Continuous sensing and parameter estimation with the boundary time-crystal
- Homodyne estimation of Gaussian quantum discord
- Ultimate limits for quantum magnetometry via time-continuous measurements
- Condensed Matter Physics in Time Crystals
- Quantum trajectories of dissipative time-crystals
- autoScale.py - A program for automatic finite-size scaling analyses: A user's guide
- Steady-state spin synchronization through the collective motion of trapped ions
- Dissipation-driven quantum phase transitions in collective spin systems
- Genuine Multipartite Correlations in a Boundary Time Crystal
- Chimera Time-Crystalline order in quantum spin networks
- Lack of a genuine time crystal in a chiral soliton model
- Can a bright soliton model reveal a genuine time crystal for a finite number of bosons?
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- Entangled time-crystal phase in an open quantum light-matter system
- Localization Driven Quantum Sensing
- Modular Many-Body Quantum Sensors
- Prethermal Floquet time crystals in chiral multiferroic chains and applications as quantum sensors of AC fields
- Current Trends in Global Quantum Metrology
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- Critical non-Hermitian topology induced quantum sensing
- Quantum thermodynamics of boundary time-crystals
- Exotic synchronization in continuous time crystals outside the symmetric subspace
- Exponentially-enhanced quantum sensing with many-body phase transitions
- Nonstabilizerness of a Boundary Time Crystal
- Nonlinearity-enhanced quantum sensing in Stark probes
- Overcoming Quantum Metrology Singularity through Sequential Measurements
- Symmetries & Correlations in Continous Time Crystals
- Multicritical quantum sensors driven by symmetry-breaking
- Designing open quantum systems for enabling quantum enhanced sensing through classical measurements
- Generation of entanglement and non-stationary states via competing coherent and incoherent bosonic hopping
- Thermodynamics and Protection of Discrete-Time Crystals
- Quantum critical engine at finite temperatures
- Exploiting nonequilibrium phase transitions and strong symmetries for continuous measurement of collective observables
- Critical Quantum Sensing: a tutorial on parameter estimation near quantum phase transitions
- Time-tronics: from temporal printed circuit board to quantum computer
- Quantum Features of the Thermal Two-Qubit Quantum Rabi Model in Ultra- and Deep-Strong Regimes
- From dynamical to steady-state many-body metrology: Precision limits and their attainability with two-body interactions
- Thermodynamics of coupled time crystals with an application to energy storage
- Time Crystals from single-molecule magnet arrays
- Quantum Enhanced Sensitivity through Many-Body Bloch Oscillations
- Negative Wigner function by decaying interaction from equilibrium
- Chaos in Time: A Dissipative Continuous Quasi Time Crystals
- Exact analysis of AC sensors based on Floquet time crystals
- Discrete time crystals in the presence of non-Markovian dynamics
- Quantum metrology through spectral measurements in quantum optics
- Noisy Stark probes as quantum-enhanced sensors
- Information scrambling and entanglement dynamics in Floquet Time Crystals
- Quantum sensing with discrete time crystals in the Lipkin-Meshkov-Glick Model
- Bounding fidelity in quantum feedback control: theory and applications to Dicke state preparation
- Parameter estimation with one- and two-time measurements on the emission field of the boundary time crystal
- Atomic Regional Superfluids in two-dimensional Moiré Time Crystals
- Discrete time crystal for periodic-field sensing with quantum-enhanced precision
- Stabilizing boundary time crystals through Non-markovian dynamics
- Harnessing Floquet dynamics for selective metrology in few-qubit systems