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Hermitian vs non-Hermitian quantum thermometry

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arxiv 2509.10840 v1 pith:RSX7OBY4 submitted 2025-09-13 quant-ph math-phmath.MP

Hermitian vs non-Hermitian quantum thermometry

classification quant-ph math-phmath.MP
keywords quantumqubitdecoherencedephasinginformationoptimaldynamicsenvironment
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We investigate the dephasing dynamics of a qubit as an effective mechanism for estimating the temperature of its surrounding environment for different symmetrizes. Our approach is fundamentally quantum, leveraging the qubit's susceptibility to decoherence without necessitating thermal equilibrium with the system under study. We also examine how symmetry properties affect the accuracy of information retrieval and the robustness of quantum information storage in such systems, highlighting their potential advantages in mitigating decoherence effects. The optimization of quantum Fisher information is performed with respect to both the interaction duration and the environmental temperature, focusing on Ohmic-like spectral density environments. Furthermore, we explicitly identify the optimal qubit measurement that attains the quantum Cramer-Rao bound for precision. Our findings reveal that optimal estimation arises from a complex interplay between the qubit's dephasing dynamics and the Ohmic characteristics of the environment with a particular focus on non-Hermitian systems that exhibit enhanced resilience to decoherence. Notably, optimal estimation does not occur when the qubit reaches a stationary state nor under conditions of complete dephasing.

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    An ancillary Unruh-DeWitt detector mediates thermal information from an AdS spacetime to a protected probe qubit, enhancing non-Markovian quantum thermometric precision.