4.6 Article

Observation of heat scaling across a first-order quantum phase transition in a spinor condensate

期刊

NEW JOURNAL OF PHYSICS
卷 23, 期 3, 页码 -

出版社

IOP PUBLISHING LTD
DOI: 10.1088/1367-2630/abe812

关键词

heat scaling; spinor condensates; quantum phase transition

资金

  1. Beijing Academy of Quantum Information Sciences
  2. National key Research and Development Program of China [2016YFA0301902]
  3. Frontier Science Center for Quantum Information of the Ministry of Education of China
  4. Tsinghua University Initiative Scientific Research Program
  5. Tsinghua University
  6. National Natural Science Foundation of China [11974201]
  7. National Thousand-Young-Talents Program

向作者/读者索取更多资源

This study observed a new phenomenon where heat exhibits power-law scaling when a system is linearly driven from a polar phase to an antiferromagnetic phase across a first-order quantum phase transition. The heat generated during two non-equilibrium processes was experimentally evaluated and the scaling exponents measured agreed well with numerical simulation results. This work opens up a new avenue for experimentally and theoretically exploring the properties of heat in non-equilibrium dynamics.
Heat generated as a result of the breakdown of an adiabatic process is one of the central concepts of thermodynamics. In isolated systems, the heat can be defined as an energy increase due to transitions between distinct energy levels. Across a second-order quantum phase transition (QPT), the heat is predicted theoretically to exhibit a power-law scaling, but it is a significant challenge for an experimental observation. In addition, it remains elusive whether a power-law scaling of heat can exist for a first-order QPT. Here we experimentally observe a power-law scaling of heat in a spinor condensate when a system is linearly driven from a polar phase to an antiferromagnetic (AFM) phase across a first-order QPT. We experimentally evaluate the heat generated during two non-equilibrium processes by probing the atom number on a hyperfine energy level. The experimentally measured scaling exponents agree well with our numerical simulation results. Our work therefore opens a new avenue to experimentally and theoretically exploring the properties of heat in non-equilibrium dynamics.

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