4.7 Article

Quantum thermodynamics in adiabatic open systems and its trapped-ion experimental realization

Journal

NPJ QUANTUM INFORMATION
Volume 6, Issue 1, Pages -

Publisher

NATURE PUBLISHING GROUP
DOI: 10.1038/s41534-020-00300-2

Keywords

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Funding

  1. National Key Research and Development Program of China [2017YFA0304100]
  2. National Natural Science Foundation of China [11734015, 11774335]
  3. Anhui Initiative in Quantum Information Technologies [AHY070000, AHY020100]
  4. Anhui Provincial Natural Science Foundation [1608085QA22]
  5. Key Research Program of Frontier Sciences, CAS [QYZDY-SSWSLH003]
  6. Fundamental Research Funds for the Central Universities [WK2470000026, WK2470000027, WK2470000028]
  7. China Postdoctoral Science Foundation [2020M671861]
  8. Conselho Nacional de Desenvolvimento Cientifico e Tecnologico (CNPq-Brazil)
  9. CNPq-Brazil [303070/2016-1]
  10. Fundacao Carlos Chagas Filho de Amparo a Pesquisa do Estado do Rio de Janeiro (FAPERJ) [203036/2016]
  11. Brazilian funding agency CNPq [142350/2017-6, 305201/2016-6]
  12. Brazilian funding agency FAPESP [2017/03727-0]
  13. CoordenacAo de Aperfeicoamento de Pessoal de Nivel Superior - Brasil (CAPES) [001]
  14. Brazilian National Institute for Science and Technology of Quantum Information [CNPq INCT-IQ] [465469/2014-0]

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Quantum thermodynamics aims at investigating both the emergence and the limits of the laws of thermodynamics from a quantum mechanical microscopic approach. In this scenario, thermodynamic processes with no heat exchange, namely, adiabatic transformations, can be implemented through quantum evolutions in closed systems, even though the notion of a closed system is always an idealization and approximation. Here, we begin by theoretically discussing thermodynamic adiabatic processes in open quantum systems, which evolve non-unitarily under decoherence due to its interaction with its surrounding environment. From a general approach for adiabatic non-unitary evolution, we establish heat and work in terms of the underlying Liouville superoperator governing the quantum dynamics. As a consequence, we derive the conditions that an adiabatic open-system quantum dynamics implies in the absence of heat exchange, providing a connection between quantum and thermal adiabaticity. Moreover, we determine families of decohering systems exhibiting the same maximal heat exchange, which imply in classes of thermodynamic adiabaticity in open systems. We then approach the problem experimentally using a hyperfine energy-level quantum bit of an Ytterbium(171)Yb(+)trapped ion, which provides a work substance for thermodynamic processes, allowing for the analysis of heat and internal energy throughout a controllable engineered dynamics.

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