Nonlinearity-enhanced quantum sensing in Stark probes
arXiv:2404.10382 · doi:10.1103/PhysRevApplied.23.014019
Abstract
Stark systems in which a linear gradient field is applied across a many-body system have recently been proposed for quantum sensing. Here, we explore sensing capacity of Stark probes, in both single-particle and many-body interacting systems, for estimating nonlinear forms of the gradient fields. Our analysis reveals that, this estimation can achieve super-Heisenberg scaling precision that grows linearly by increasing the nonlinearity. Specifically, we find a universal algebraic relation between the scaling of the precision and the degree of the nonlinearity. This universal behavior remains valid in both single-particle and many-body interacting probes and reflects itself in the properties of the phase transition from an extended to a localized phase, obtained through establishing a comprehensive finite-size scaling analysis. Considering a parabolic gradient potential composed of both linear and nonlinear fields, we used multi-parameter estimation methodology to estimate the components of the gradient potential. The phase diagram of the system is determined in terms of both linear and nonlinear gradient fields showing how the nonlocalized phase turns into a localized one as the Stark fields increase. The sensing precision of both linear and nonlinear Stark fields follows the same universal algebraic relation that was found for the case of single parameter sensing. We demonstrate that simple and experimentally available measurements can reach the theoretical precision bounds. Finally, we show that quantum enhanced sensitivity is still achievable even when we incorporate the preparation time of the probe into our resource analysis.
14 pages, 8 figures. Comments are welcome!
References in corpus (84)
- Quantum sensing
- Advances in Quantum Metrology
- Quantum-enhanced measurements: beating the standard quantum limit
- Quantum metrology
- The Dicke Quantum Phase Transition with a Superfluid Gas in an Optical Cavity
- Ground state overlap and quantum phase transitions
- The elusive Heisenberg limit in quantum enhanced metrology
- Quantum Fisher information matrix and multiparameter estimation
- Fidelity approach to quantum phase transitions
- Strongly Correlated Quantum Walks in Optical Lattices
- Quantum enhanced measurements without entanglement
- Non-Hermitian Topological Sensors
- Generalized Limits for Single-Parameter Quantum Estimation
- Dynamical phase transition in the open Dicke model
- Observation of a dissipative phase transition in a one-dimensional circuit QED lattice
- Quantum criticality as a resource for quantum estimation
- Stability of macroscopic entanglement under decoherence
- Compatibility in Multiparameter Quantum Metrology
- Stark many-body localization
- From Bloch Oscillations to Many Body Localization in Clean Interacting Systems
- Probing a dissipative phase transition via dynamical optical hysteresis
- Quantum Metrology in Open Systems: Dissipative Cramér-Rao Bound
- Mixed-state fidelity and quantum criticality at finite temperature
- Exponentially-enhanced quantum sensing with non-Hermitian lattice dynamics
- Fidelity susceptibility, scaling, and universality in quantum critical phenomena
- Magnet field sensing beyond the standard quantum limit under the effect of decoherence
- Realization of the Dicke model using cavity-assisted Raman transitions
- Dynamic framework for criticality-enhanced quantum sensing
- Exponentially Enhanced Quantum Metrology
- Quantum metrology for a general Hamiltonian parameter
- Optimal quantum estimation in spin systems at criticality
- Nonclassicality as a Quantifiable Resource for Quantum Metrology
- Criticality-Enhanced Quantum Sensing via Continuous Measurement
- Observation of the photon-blockade breakdown phase transition
- On quantumness in multi-parameter quantum estimation
- Qubit metrology and decoherence
- At the limits of criticality-based quantum metrology: apparent super-Heisenberg scaling revisited
- Stark many-body localization on a superconducting quantum processor
- Critical parametric quantum sensing
- Nonlinear quantum metrology of many-body open systems
- Stable macroscopic quantum superpositions
- Quantum sensing close to a dissipative phase transition: symmetry breaking and criticality as metrological resources
- A quantum transducer using a parametric driven-dissipative phase transition
- Restoring Heisenberg scaling in noisy quantum metrology by monitoring the environment
- Experimental probes of Stark many-body localization
- Global sensing and its impact for quantum many-body probes with criticality
- High-density quantum sensing with dissipative first order transitions
- Entanglement-enhanced quantum metrology in a noisy environment
- Phase transitions in an Ising chain interacting with a single mode cavity field
- Quantum transport and localization in 1d and 2d tight-binding lattices
- Quantum states made to measure
- Stark many-body localization: Evidence for Hilbert-space shattering
- Quantum metrology with boundary time crystals
- Driving enhanced quantum sensing in partially accessible many-body systems
- Quantum metrology for the Ising Hamiltonian with transverse magnetic field
- Many-body localization of bosons in optical lattice: Dynamics in disorder-free potentials
- Fidelity Susceptibility in One-dimensional Disordered Lattice Models
- Critical quantum metrology assisted by real-time feedback control
- Many-body localization in tilted and harmonic potentials
- Bath-induced decay of Stark many-body localization
- Floquet time-crystals as sensors of AC fields
- Wannier-Stark states and Bloch oscillations in the honeycomb lattice
- Quantum parameter estimation affected by unitary disturbance
- Coexistence of localized and extended phases: Many-body localization in a harmonic trap
- Criticality-enhanced quantum sensing in ferromagnetic Bose-Einstein condensates: role of readout measurement and detection noise
- Transport in Stark Many Body Localized Systems
- Integrable quantum many-body sensors for AC field sensing
- Mobility edge of Stark many-body localization
- Stark localization as a resource for weak-field sensing with super-Heisenberg precision
- Drive-induced many-body localization and coherent destruction of Stark many-body localization
- Criticality-enhanced Electric Field Gradient Sensor with Single Trapped Ions
- Localization Driven Quantum Sensing
- Estimating phase with a random generator: Strategies and resources in multiparameter quantum metrology
- Engineering First-Order Quantum Phase Transitions for Weak Signal Detection
- Experimental demonstration of topological bounds in quantum metrology
- Critical non-Hermitian topology induced quantum sensing
- Stability of electric-field-driven MBL in an interacting long range hopping model
- Long-range interacting Stark many-body probes with Super-Heisenberg precision
- Local integrals of motion and the stability of many-body localisation in Wannier-Stark potentials
- Enhancement of Frequency Estimation by Spatially Correlated Environments
- Robustness of Stark many-body localization in the - Heisenberg model
- Many-body localization in a quantum gas with long-range interactions and linear external potential
- Enhancing precision of atomic clocks by tuning disorder in accessories
- Exact solution of the minimalist Stark many body localization problem in terms of spin pair hopping
Cited by in corpus (9)
- Review: Quantum Metrology and Sensing with Many-Body Systems
- Discrete Time Crystal Phase as a Resource for Quantum Enhanced Sensing
- Multicritical quantum sensors driven by symmetry-breaking
- Stark-induced tunable phase transition in the two-photon Dicke-Stark model
- Critical Quantum Sensing: a tutorial on parameter estimation near quantum phase transitions
- Quantum sensing with ultracold simulators in lattice and ensemble systems: a review
- Quantum Enhanced Sensitivity through Many-Body Bloch Oscillations
- Noisy Stark probes as quantum-enhanced sensors
- Discrete time crystal for periodic-field sensing with quantum-enhanced precision