Configuration-dependent precision in magnetometry and thermometry using multi-qubit quantum sensors
arXiv:2505.22395 · doi:10.1103/zn5v-rcgd
Abstract
We study the performance of quantum sensors composed of four qubits arranged in different geometries for magnetometry and thermometry. The qubits interact via the transverse-field Ising model with both ferromagnetic and antiferromagnetic couplings, maintained in thermal equilibrium with a heat bath under an external magnetic field. Using quantum Fisher information, we evaluate the metrological precision of these sensors. For ferromagnetic couplings, weakly connected graphs (e.g., the chain graph, P_4) perform optimally in estimating weak magnetic fields, whereas highly connected graphs (e.g., the complete graph, K_4) excel at strong fields. Conversely, K_4 achieves the highest sensitivity for temperature estimation in the weak-field regime. In the antiferromagnetic case, we uncover a fundamental trade-off dictated by spectral degeneracy: configurations with non-degenerate energy spectra - such as the pan-like graph (three qubits in a triangle with the fourth attached) - exhibit strong magnetic field sensitivity due to their pronounced response to perturbations. In contrast, symmetric structures like the square graph, featuring degenerate energy levels (particularly ground-state degeneracy), are better suited for precise thermometry. Notably, our four-qubit sensors achieve peak precision in the low-temperature, weak-field regime. Finally, we introduce a spectral sensitivity measure that quantifies energy spectrum deformations under small perturbations, providing a simple heuristic indicator of metrological sensitivity.
16 pages, 12 figures
References in corpus (60)
- Quantum sensing
- Advances in Quantum Metrology
- Quantum metrology
- Quantum metrology from a quantum information science perspective
- Quantum metrology with entangled coherent states
- Quantum noise limited and entanglement-assisted magnetometry
- Quantum criticality as a resource for quantum estimation
- Individual quantum probes for optimal thermometry
- Multi-parameter estimation in networked quantum sensors
- Sub-nanoscale Temperature, Magnetic Field and Pressure sensing with Spin Centers in 2D hexagonal Boron Nitride
- A Geometric Perspective on Quantum Parameter Estimation
- Thermometry in the quantum regime: Recent theoretical progress
- On chip, high-sensitivity thermal sensor based on high-Q polydimethylsiloxane-coated microresonator
- Quantum metrology in Lipkin-Meshkov-Glick critical systems
- Quantum Limits of Thermometry
- In situ thermometry of a cold Fermi gas via dephasing impurities
- Collisional quantum thermometry
- Robust quantum optimizer with full connectivity
- Precision thermometry and the quantum speed limit
- Improved Quantum Magnetometry beyond the Standard Quantum Limit
- Quantum thermometry by single-qubit dephasing
- Review: Quantum Metrology and Sensing with Many-Body Systems
- Entanglement-assisted quantum metrology
- Achieving the Landau bound to precision of quantum thermometry in systems with vanishing gap
- Entangled quantum probes for dynamical environmental noise
- Ultimate limits for quantum magnetometry via time-continuous measurements
- Continuous-variable quantum probes for structured environments
- Bridging thermodynamics and metrology in non-equilibrium Quantum Thermometry
- QuanEstimation: An open-source toolkit for quantum parameter estimation
- Optimal Probes for Global Quantum Thermometry
- Towards Replacing Resistance Thermometry with Photonic Thermometry
- Phonon counting thermometry of an ultracoherent membrane resonator near its motional ground state
- Practical applications of quantum sensing: a simple method to enhance sensitivity of Nitrogen-Vacancy-based temperature sensors
- Coherence enhanced quantum metrology in a nonequilibrium optical molecule
- Sequential measurements for quantum-enhanced magnetometry in spin chain probes
- Optimal cold atom thermometry using adaptive Bayesian strategies
- Speed of qubit states during thermalisation
- Few-fermion thermometry
- Multi-spin probes for thermometry in the strong-coupling regime
- Optimal nonequilibrium thermometry in Markovian environments
- Protocols for estimating multiple functions with quantum sensor networks: geometry and performance
- Non-equilibrium readiness and accuracy of Gaussian Quantum Thermometers
- Lattice quantum magnetometry
- Universal quantum magnetometry with spin states at equilibrium
- Fundamental limits of metrology at thermal equilibrium
- Quantum-enhanced magnetometry at optimal number density
- Quantum sensing of open systems: Estimation of damping constants and temperature
- Optimal Thermometers with Spin Networks
- Detecting Acoustic Blackbody Radiation with an Optomechanical Antenna
- Invasiveness of non-equilibrium quantum thermometry
- Calibrated quantum thermometry in cavity optomechanics
- Thermometry of cold atoms in optical lattices via artificial gauge fields
- Quantum metrology enhanced by coherence-induced-driving in a cavity QED setup
- Strongly coupled fermionic probe for nonequilibrium thermometry
- Quantum magnetometry using discrete-time quantum walk
- In Situ Thermometry of Fermionic Cold-Atom Quantum Wires
- Geometrical optimization of spin clusters for the preservation of quantum coherence
- Role of topology in determining the precision of a finite thermometer
- Topological quantum thermometry
- Current circulation near additional energy degeneracy points in quadratic Fermionic networks