4.6 Article

Enhancement of low-temperature thermometry by strong coupling

期刊

PHYSICAL REVIEW A
卷 96, 期 6, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevA.96.062103

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资金

  1. Spanish MINECO [FIS2013-40627-P, FIS2016-80681-P, FOQUS FIS2013-46768-P, QIBEQI FIS2016-80773-P, Severo Ochoa SEV-2015-0522]
  2. Generalitat de Catalunya (CERCA Program)
  3. CELLEX-ICFO-MPQ Research Fellowships
  4. Villum Fonden
  5. la Caixa-Severo Ochoa Program
  6. COST Action [MP1209]
  7. Generalitat de Catalunya (CIRIT) [2014-SGR-966, SGR-875]
  8. European Research Council (ERC) Starting Grant GQCOP [637352]

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We consider the problem of estimating the temperature T of a very cold equilibrium sample. The temperature estimates are drawn from measurements performed on a quantum Brownian probe strongly coupled to it. We model this scenario by resorting to the canonical Caldeira-Leggett Hamiltonian and find analytically the exact stationary state of the probe for arbitrary coupling strength. In general, the probe does not reach thermal equilibrium with the sample, due to their nonperturbative interaction. We argue that this is advantageous for low-temperature thermometry, as we show in our model that (i) the thermometric precision at low T can be significantly enhanced by strengthening the probe-sampling coupling, (ii) the variance of a suitable quadrature of our Brownian thermometer can yield temperature estimates with nearly minimal statistical uncertainty, and (iii) the spectral density of the probe-sample coupling may be engineered to further improve thermometric performance. These observations may find applications in practical nanoscale thermometry at low temperatures-a regime which is particularly relevant to quantum technologies.

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