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September 5, 2024Physical review. A/Physical review, A16 citationsOpen Access

Harnessing coherence generation for precision single- and two-qubit quantum thermometry

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YAY. AiacheAAA. El AllatiKAK. El Anouz

Key Points

  • Increased precision is achieved in temperature measurements as the probe approaches its steady state, revealing improved efficiency in quantum thermometry.
  • Using quantum fisher information, the study quantifies the precision of temperature estimates, demonstrating the advantages of entangled qubits.
  • Assessment involved analyzing two qubits, either entangled or separate, as probes in various environmental configurations to enhance measurement reliability with ancilla mediators present for thermometric sensitivity improvements and coherence transmission methods employed for effective qubit interactions. With high efficiency noted in low temperature estimations, alterations in qubit interactions are emphasized as crucial to optimizing results.

Abstract

Quantum probes, such as single- and two-qubit probes, can accurately measure the temperature of a bosonic bath. The current investigation assesses the precision of temperature estimate using quantum Fisher information and the accompanying quantum signal-to-noise ratio. Employing an ancilla as a mediator between the probe and the bath improves thermometric sensitivity by transmitting temperature information into the probe qubit's coherences. In addition, we analyze two interacting qubits that were initially entangled or separated as quantum probes for various environmental configurations. Our findings show that increased precision is gained when the probe approaches its steady state, which is determined by the coupling between the two qubits. Furthermore, we can obtain high efficiency temperature estimation for any low temperature by changing the interaction between the two qubits.

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Cite This Study

Aiache et al. (2024) studied this question.

synapsesocial.com/papers/68e5932eb6db64358752eda5https://doi.org/10.1103/physreva.110.032605
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