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Experimental critical quantum metrology with the Heisenberg scaling

Ran Liu, Yu Chen, Min Jiang, Xiaodong Yang, Ze Wu, Yuchen Li, Haidong Yuan, Xinhua Peng, Jiangfeng Du

2021npj Quantum Information61 citationsDOIOpen Access PDF

Abstract

Abstract Critical quantum metrology, which exploits quantum critical systems as probes to estimate a physical parameter, has gained increasing attention recently. However, the critical quantum metrology with a continuous quantum phase transition (QPT) is experimentally challenging since a continuous QPT only occurs at the thermodynamic limit. Here, we propose an adiabatic scheme on a perturbed Ising spin model with a first-order QPT. By introducing a small transverse magnetic field, we can not only encode an unknown parameter in the ground state but also tune the energy gap to control the evolution time of the adiabatic passage. Moreover, we experimentally implement the critical quantum metrology scheme using nuclear magnetic resonance techniques and show that at the critical point the precision achieves the Heisenberg scaling as 1/ T . As a theoretical proposal and experimental implementation of the adiabatic scheme of critical quantum metrology and its advantages of easy implementation, inherent robustness against decays and tunable energy gap, our adiabatic scheme is promising for exploring potential applications of critical quantum metrology on various physical systems.

Topics & Concepts

Quantum metrologyPhysicsHeisenberg limitMetrologyQuantum phase transitionAdiabatic processQuantumQuantum sensorAdiabatic quantum computationCritical point (mathematics)Statistical physicsQuantum mechanicsQuantum computerQuantum technologyScalingOpen quantum systemQuantum networkMathematicsGeometryMathematical analysisQuantum Information and CryptographyQuantum many-body systemsQuantum and electron transport phenomena
Experimental critical quantum metrology with the Heisenberg scaling | Litcius