arXiv · 2603.18922
Peltier cooling in Corbino-geometry quantum Hall systems
Abstract
Quantum Hall systems having Corbino geometry are expected to have a large Peltier coefficient $Π_{rr}$ in the quantum Hall plateau region. We present an analytic formula for $Π_{rr}$ calculated employing the spectral conductivity obtained based on the self-consistent Born approximation. The coefficient $Π_{rr}$ is shown to have a large negative (positive) value just above (below) an integer Landau-level filling, with the absolute value $|Π_{rr}|$ increasing with decreasing temperature or decreasing disorder, and approaching the saw-tooth shape $- (E_{N_\mathrm{F} σ_\mathrm{F}}-ζ)/e$ in the limit of vanishing disorder, where $E_{N_\mathrm{F} σ_\mathrm{F}}$ is the highest occupied Landau level and $ζ$ is the chemical potential. As an initial attempt to experimentally observe the effect of the large $|Π_{rr}|$, we measure the electron temperature $T_\mathrm{out}$ near the outer perimeter of a Corbino disk, applying a radial dc current $I_\mathrm{dc}$. The temperature $T_\mathrm{out}$ is observed to increase or decrease depending on the direction of $I_\mathrm{dc}$ and the sign of $Π_{rr}$ as expected from the Peltier effect. Notably, $T_\mathrm{out}$ becomes lower than the bath temperature for outward (inward) $I_\mathrm{dc}$ in the region where $Π_{rr} < 0$ ($Π_{rr} > 0$).
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Akira Endo, Yoshiaki Hashimoto. 2026-03-19. Peltier cooling in Corbino-geometry quantum Hall systems. https://doi.org/10.1007/s10909-026-03397-5
Cite the original work for its findings. Save a collection to share your selection of sources.