Criticality-Enhanced Quantum Sensing with a Parametric Superconducting Resonator
ORAL
Abstract
Quantum metrology, a cornerstone of quantum technologies, exploits entanglement and superposition to achieve higher precision than classical protocols in parameter estimation tasks. When combined with critical phenomena such as phase transitions, the divergence of quantum fluctuations is predicted to enhance the performance of quantum sensors. Here, we implement a critical quantum sensor using a superconducting parametric (i.e., two-photon driven) Kerr resonator. The sensor, a linear resonator terminated by a superconducting quantum interference device, operates near the critical point of a finite-component second-order dissipative phase transition obtained by scaling the system parameters. We analyze the performance of a frequency-estimation protocol and show that quadratic precision scaling with respect to the system size can be achieved with finite values of the Kerr nonlinearity. Since each photon emitted from the cavity carries more information about the parameter to be estimated compared to its classical counterpart, our protocol opens perspectives for faster or more precise metrological protocols. Our results demonstrate that quantum advantage in a sensing protocol can be achieved by exploiting a finite-component phase transition.
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Publication: https://arxiv.org/abs/2409.19968
Presenters
Guillaume Beaulieu
Federal Institute of Technology (EPFL)
Authors
Guillaume Beaulieu
Federal Institute of Technology (EPFL)
Fabrizio Minganti
Alice and Bob, Alice&Bob
Simone Frasca
EPFL, Federal Institute of Technology (EPFL)
Marco Scigliuzzo
École Polytechnique Fédérale de Lausanne, Federal Institute of Technology (EPFL), Ecole Polytechnique Federale de Lausanne
Simone Felicetti
Sapienza University and National Research Council (ISC-CNR), 1-Institute for Complex Systems, National Research Council CNR-ISC, 2-Physics Department, Sapienza University, Rome
Roberto Di Candia
Aalto University and University of Pavia, 1-Aalto University, 2-Dipartimento di Fisica, Università degli Studi di Pavia
Pasquale Scarlino
École Polytechnique Fédérale de Lausanne, Federal Institute of Technology (EPFL)