The hydroxyl radical (the OH molecule) carries both electric and magnetic dipole moments and, as a diatomic molecule, admits a comparatively simple and accurate model. This makes it a natural quantum probe for the joint estimation of electric and magnetic fields. Here we study simultaneous estimation of both fields using the tools of multiparameter quantum estimation theory, explicitly accounting for the performance loss caused by measurement incompatibility. We analyze and optimize both stationary and dynamical estimation strategies. In the stationary regime we consider ground and thermal states of the Stark-Zeeman Hamiltonian and identify optimal operating points. For thermal probes we find a nontrivial multiparameter effect: Increasing the temperature can reduce the overall estimation error by weakening parameter correlations. In the dynamical regime we study both pure and thermal initial states, illustrating nontrivial manifestations of incompatibility for mixed probes. Finally, we show that an optimal sequential control protocol can overcome limitations due to noncommutativity, and we assess its robustness in the multiparameter setting.

OH molecule as a quantum probe to jointly estimate electric and magnetic fields / Previdi, L., Albarelli, F., Paris, M.G.A.. - In: PHYSICAL REVIEW A. - ISSN 2469-9926. - 113:6(2026). [10.1103/gpmd-ck38]

OH molecule as a quantum probe to jointly estimate electric and magnetic fields

Albarelli, Francesco;
2026-01-01

Abstract

The hydroxyl radical (the OH molecule) carries both electric and magnetic dipole moments and, as a diatomic molecule, admits a comparatively simple and accurate model. This makes it a natural quantum probe for the joint estimation of electric and magnetic fields. Here we study simultaneous estimation of both fields using the tools of multiparameter quantum estimation theory, explicitly accounting for the performance loss caused by measurement incompatibility. We analyze and optimize both stationary and dynamical estimation strategies. In the stationary regime we consider ground and thermal states of the Stark-Zeeman Hamiltonian and identify optimal operating points. For thermal probes we find a nontrivial multiparameter effect: Increasing the temperature can reduce the overall estimation error by weakening parameter correlations. In the dynamical regime we study both pure and thermal initial states, illustrating nontrivial manifestations of incompatibility for mixed probes. Finally, we show that an optimal sequential control protocol can overcome limitations due to noncommutativity, and we assess its robustness in the multiparameter setting.
2026
OH molecule as a quantum probe to jointly estimate electric and magnetic fields / Previdi, L., Albarelli, F., Paris, M.G.A.. - In: PHYSICAL REVIEW A. - ISSN 2469-9926. - 113:6(2026). [10.1103/gpmd-ck38]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11381/3072135
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