arXiv · 2408.13099
Magnon-mediated electric current drag and nonlocal spin-Peltier effect in the ac regime
Abstract
Electron-magnon coupling at the interface between a normal metal and a magnetically ordered insulator modifies the electrical conductivity of the normal metal, an effect known as spin-Hall magnetoresistance. It can also facilitate magnon-mediated electric current drag, the nonlocal electric current response of two normal metal layers separated by a magnetic insulator. Additionally, spin and heat transport are coupled both in the magnetic insulator and across the interfaces to normal metals. In this article, we present a theory of these spintronic and spin-caloritronic effects for time-dependent applied electric fields $E(\omega)$, with driving frequencies $\omega$ up to the THz regime. Our model describes how the dominant transport mechanism, coherent or incoherent magnons, evolves with the driving frequency $\omega$.
Explore related subjects
Keep this discovery
Oliver Franke, Duje Akrap, Piet W. Brouwer. 2024-08-23. Magnon-mediated electric current drag and nonlocal spin-Peltier effect in the ac regime. https://doi.org/10.1103/zpts-44w3
Cite the original work for its findings. Save a collection to share your selection of sources.