ArXiv TLDR

Heating Dynamics of Mesoscopic Electron Baths at High Magnetic Field

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2604.12810

F. Zanichelli, A. Veillon, C. Piquard, A. Aassime, Y. Sato + 6 more

cond-mat.mes-hall

TLDR

Researchers uncover a two-step thermalization process in mesoscopic electron baths at high magnetic fields, crucial for quantum device engineering.

Key contributions

  • Engineered a mesoscopic thermal circuit to investigate heat flow dynamics on slower timescales.
  • Observed a unique two-step thermalization: a fast initial temperature step followed by a slow rise over minutes.
  • Quantitatively accounted for the process by balancing heat flows between electrons, phonons, and nuclear spins.
  • Highlights distinctive quantum thermo-dynamical phenomena relevant for quantum circuit constituents.

Why it matters

This research advances quantum thermodynamics by experimentally characterizing heat flow in mesoscopic devices. Understanding these unique thermalization dynamics is vital for designing and engineering future quantum circuits, especially for exotic states at high magnetic fields.

Original Abstract

Quantum thermodynamics addresses the dynamics of heat flow in quantum devices driven out of equilibrium. Although mesoscopic circuits at low temperatures provide a flexible platform to explore this dynamics, experimental studies are wanting because thermal timescales in nanodevices are often too fast. Here we engineer and investigate with noise thermometry a mesoscopic thermal circuit where heat flows between electron, phonon and nuclear systems can occur on slower timescales. The central constituent of this device is a micrometer-scale metallic island electrically connected to large cold electron reservoirs through two to four ballistic quantum Hall channels, a component frequently used for exploring stationary thermal currents. We uncover a two-step thermalization process specific to the mesoscopic scale, involving a fast initial temperature step followed by a much slower rise extending over minutes. This observation is quantitatively accounted for by the balance between heat flows through electronic quantum channels, to cold phonons, and to the nuclear spins in the metallic island. The disclosed mesoscopic thermalization takes a step into the field of quantum thermo-\emph{dynamical} phenomena, highlighting their distinctive nature on a central constituent of quantum circuits. The implications for the thermal engineering of nanodevices include the thermal characterization of exotic states at high magnetic field.

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