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Thermometry Based on a Superconducting Qubit

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arxiv 2409.02784 v3 pith:IEPY6HLT submitted 2024-09-04 quant-ph

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keywords qubittemperatureeffectiverangecompareexperimentalmeasurementmeasurements
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abstract

We report temperature measurements using a transmon qubit by detecting the population of its first three energy levels, after applying a sequence of $\pi$-pulses and performing projective dispersive readout. We measure the effective temperature of the qubit and characterize its relaxation and coherence times $\tau_{1,2}$ for three devices in the temperature range of $20-300$ mK. We analyze the process of qubit thermalization to its effective environment consisting of multiple heat baths and support it with experimental data. Signal-to-noise (SNR) ratio of the temperature measurement depends strongly on $\tau_1$, which drops at higher temperatures due to quasiparticle excitations, adversely affecting the measurements and setting an upper bound of the dynamic temperature range of the thermometer. The measurement relies on coherent dynamics of the qubit during the $\pi$-pulses. The effective qubit temperature follows closely that of the cryostat in the range of $100 - 250$ mK. We present a numerical model of the qubit population distribution and compare it favorably with the experimental results. Finally, we compare our technique with previous works on qubit thermometry and discuss its application prospects.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Analytical solution of the open dispersive Jaynes-Cummings model and perturbative analytical solution of the open quantum Rabi model

    quant-ph 2024-11 conditional novelty 7.0 of 10

    The authors derive an exact propagator for the open dispersive Jaynes-Cummings model and a second-order perturbative solution for the open quantum Rabi model, revealing a non-thermal qubit steady state that is unique ...

  2. Dispersive Qubit Readout of Temperature

    quant-ph 2024-12 conditional novelty 6.0 of 10

    Dispersive qubit readout with squeezed light gives exponential temperature-precision improvement only in zero-temperature, zero-time, or zero-photon limits; a claimed Heisenberg 1/N scaling for N bath-coupled qubits r...

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