Criticality-Enhanced Quantum Sensing via Continuous Measurement
Theodoros Ilias, Dayou Yang, Susana F. Huelga, Martin B. Plenio

TL;DR
This paper introduces a novel quantum sensing protocol that leverages continuous measurement of emitted radiation at dissipative critical points, surpassing standard limits and applicable to various quantum-optical systems.
Contribution
It develops a universal scaling theory for quantum Fisher information in open quantum systems and proposes a practical continuous detection scheme for enhanced quantum sensing.
Findings
Scaling laws exceed the standard quantum limit
Protocol can saturate the Heisenberg limit
Photon counting in the Rabi model demonstrates improved precision
Abstract
Present protocols of criticality-enhanced sensing with open quantum sensors assume direct measurement of the sensor and omit the radiation quanta emitted to the environment, thereby potentially missing valuable information. Here we propose a protocol for criticality-enhanced sensing via continuous observation of the emitted radiation quanta. Under general assumptions, we establish a scaling theory for the global quantum Fisher information of the joint system and environment state at dissipative critical points. We derive universal scaling laws featuring transient and long-time behavior governed by the underlying critical exponents. Importantly, such scaling laws exceed the standard quantum limit and can in principle saturate the Heisenberg limit. To harness such advantageous scaling, we propose a practical sensing scheme based on continuous detection of the emitted quanta as realized…
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Taxonomy
TopicsAdvanced Thermodynamics and Statistical Mechanics · Quantum and electron transport phenomena · Quantum Information and Cryptography
