Magnon-drag thermopower and Nernst coefficient in Fe, Co, and Ni
Abstract
Magnon-drag is shown to dominate the thermopower of elemental Fe from 2 to 80 K and of elemental Co from 150 to 600 K; it is also shown to contribute to the thermopower of elemental Ni from 50 to 500 K. Two theoretical models are presented for magnon-drag thermopower. One is a hydrodynamic theory based purely on non-relativistic, Galilean, spin-preserving electron-magnon scattering. The second is based on spin-motive forces, where the thermopower results from the electric current pumped by the dynamic magnetization associated with a magnon heat flux. In spite of their very different microscopic origins, the two give similar predictions for pure metals at low temperature, allowing us to semi-quantitatively explain the observed thermopower of elemental Fe and Co without adjustable parameters. We also find that magnon-drag may contribute to the thermopower of Ni. A spin-mixing model is presented that describes the magnon-drag contribution to the Anomalous Nernst Effect in Fe, again enabling a semi-quantitative match to the experimental data without fitting parameters. Our work suggests that particle non-conserving processes may play an important role in other types of drag phenomena, and also gives a predicative theory for improving metals as thermoelectric materials.
Keywords
Cite
@article{arxiv.1603.03736,
title = {Magnon-drag thermopower and Nernst coefficient in Fe, Co, and Ni},
author = {Sarah J. Watzman and Rembert A. Duine and Yaroslav Tserkovnyak and Stephen R. Boona and Hyungyu Jin and Arati Prakash and Yuanhua Zheng and Joseph P. Heremans},
journal= {arXiv preprint arXiv:1603.03736},
year = {2017}
}
Comments
main text plus 7 figures; accepted in PRB September 2016