Observation of transverse Thomson effect
Abstract
The thermoelectric Thomson effect, predicted in the 1850s by William Thomson, produces volumetric heating/cooling in a conductor due to the concerted action of the Seebeck and Peltier effects. Recently, transverse thermoelectrics studies on the Nernst and Ettingshausen effects have progressed rapidly to enable versatile thermal management technologies and to explore topological transport properties. However, a transverse Thomson effect, arising from the concerted action of the Nernst and Ettingshausen effects, has not yet been observed. Here, we report the observation of the transverse Thomson effect in a conductor. We observed volumetric heating/cooling in a semimetallic BiSb alloy induced by a charge current, temperature gradient, and magnetic field applied orthogonally to each other using thermoelectric imaging techniques. We found that the heating/cooling can be switched by the field direction. Our experiments and analyses reveal the essential difference between the conventional and transverse Thomson effects; the former depends sorely on the temperature derivative of the Seebeck coefficient, while the latter depends not only on the temperature derivative of the Nernst coefficient but also on its magnitude. The observation of the transverse Thomson effect fills a missing piece in the history of thermoelectrics and provides a new principle for active thermal management technologies.
Cite
@article{arxiv.2501.05857,
title = {Observation of transverse Thomson effect},
author = {Atsushi Takahagi and Takamasa Hirai and Abdulkareem Alasli and Sang Jun Park and Hosei Nagano and Ken-ichi Uchida},
journal= {arXiv preprint arXiv:2501.05857},
year = {2025}
}
Comments
18 pages, 7 figures. We found that Fig. 5 and Extended Data Fig. 2 in Version 1 contained mistakes, which were caused by human errors during the preparation of the graphs. In Version 2, the figures have been corrected appropriately. This correction does not change the conclusion of this work at all