Precision limit under weak coupling with an ancillary qubit
arXiv:2601.15354 · doi:10.1103/my6j-77x2
Abstract
We propose a measurement-based quantum metrology protocol in a composite model, where the probe system (a spin ensemble) is coupled to an ancillary two-level system (qubit) with a general Heisenberg XXZ interaction. With optimized probe-ancilla coupling strengths and duration of joint evolution, the two parallel evolution paths of the probe system induced by the unconditional measurement on qubit can transform an eigenstate of the collective angular momentum operator of spin ensemble into a two-component state with a large distance in eigenspace. The quantum Fisher information about the phase encoded in the probe system of polarized states or their superposition, that could be relaxed to mixed states, can therefore manifest an exact or asymptotic quadratic scaling with respect to the probe size (spin number) . The quadratic scaling behavior is found to be insensitive to the imperfect encoding operator, polarized direction of probe, and coupling strength. The phase sensitivity can approach the Heisenberg limit by virtue of the parity detection on either ancillary qubit or probe system. This work justifies that the unconditional measurement on a weakly coupled qubit could be an efficient resource to replace Greenberger-Horne-Zeilinger-type states and squeezing Hamiltonian for exceeding the standard quantum limit in metrology precision.
12 pages, 6 figures
References in corpus (43)
- Quantum-enhanced measurements: beating the standard quantum limit
- Quantum metrology
- Sensitivity Optimization for NV-Diamond Magnetometry
- Many-particle entanglement with Bose--Einstein condensates
- Nonlinear atom interferometer surpasses classical precision limit
- Engineered 2D Ising interactions on a trapped-ion quantum simulator with hundreds of spins
- Atom chip based generation of entanglement for quantum metrology
- Quantum spin dynamics and entanglement generation with hundreds of trapped ions
- Implementation of Cavity Squeezing of a Collective Atomic Spin
- Quantum limits in optical interferometry
- Quantum Metrology with Two-Mode Squeezed Vacuum: Parity Detection Beats the Heisenberg Limit
- Generalized Limits for Single-Parameter Quantum Estimation
- Using entanglement against noise in quantum metrology
- Observation of multi-component atomic Schrödinger cat states of up to 20 qubits
- Fisher information under decoherence in Bloch representation
- Theory of electron spin decoherence by interacting nuclear spins in a quantum dot
- Magnetic field sensing beyond the standard quantum limit using 10-spin NOON states
- Cavity Mediated Collective Spin Exchange Interactions in a Strontium Superradiant Laser
- Quantum metrology with a scanning probe atom interferometer
- Quantum Fisher information of entangled coherent state in the presence of photon losses: exact solution
- Optimal measurements for simultaneous quantum estimation of multiple phases
- Quantum metrology for a general Hamiltonian parameter
- Squeezing the Collective Spin of a Dilute Atomic Ensemble by Cavity Feedback
- Quantum Metrology with Indefinite Causal Order
- Quantum Metrological Limits via a Variational Approach
- Pumped-up SU(1,1) interferometry
- Control of electron spin decoherence caused by electron-nuclear spin dynamics in a quantum dot
- Quantum-enhanced sensing using non-classical spin states of a highly magnetic atom
- Optical interferometry in the presence of large phase diffusion
- Improving the phase super-sensitivity of squeezing-assisted interferometers by squeeze factor unbalancing
- Scalable creation of long-lived multipartite entanglement
- Quantum-enhanced metrology with large Fock states
- Phase sensitivity of a Mach-Zehnder interferometer with single-intensity and difference-intensity detection
- Beating the Standard Quantum Limit under Ambient Conditions with Solid-State Spins
- One- and two-axis squeezing via laser coupling in an atomic Fermi-Hubbard model
- Variational principle for optimal quantum controls in quantum metrology
- Ultimate precision of joint quadrature parameter estimation with a Gaussian probe
- Engineering spin squeezing in a 3D optical lattice with interacting spin-orbit-coupled fermions
- Quantum metrology with one auxiliary particle in a correlated bath and its quantum simulation
- GHZ protocols enhance frequency metrology despite spontaneous decay
- Achieving Heisenberg scaling by probe-ancilla interaction in quantum metrology
- Qubit-assisted quantum metrology under a time-reversal strategy
- Achieving the Heisenberg limit of metrology via measurement on an ancillary qubit