Giant orbital-magnon conversion driven perpendicular magnetization switching

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Meng, Fanyu, Feng, Ying, Sun, Mingyang, Kang, Baiyan, Song, Donglin, Zhang, Tuo, Zhang, Jia, Zhou, Wenping, Zhao, Jijun, Wang, Yi
Format: Preprint
Published: 2026
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866915983685320704
author Meng, Fanyu
Feng, Ying
Sun, Mingyang
Kang, Baiyan
Song, Donglin
Zhang, Tuo
Zhang, Jia
Zhou, Wenping
Zhao, Jijun
Wang, Yi
author_facet Meng, Fanyu
Feng, Ying
Sun, Mingyang
Kang, Baiyan
Song, Donglin
Zhang, Tuo
Zhang, Jia
Zhou, Wenping
Zhao, Jijun
Wang, Yi
contents The pursuit of beyond-Moore information technologies has stimulated the exploration of novel information carriers, such as electron spin, orbital, and magnon, beyond electron charge. Efficient interconversion among these degrees of freedom and precise control over the information states are crucial for advancing nanoelectronic devices. However, a direct coupling between orbital angular momentum (L) and magnons (M) has remained elusive, and magnetization switching through orbital-to-magnon (L-M) conversion has not yet been achieved. Here, we report the experimental demonstration of L-M conversion in an orbital metal/antiferromagnetic insulator bilayer at room temperature, with an efficiency over an order of magnitude higher than that in traditional orbital systems lacking the L-M process. Consequently, we achieved efficient room-temperature perpendicular magnetization switching in a CoFeB ferromagnetic layer mediated by this new mechanism. Our findings establish a direct link between orbitronics and magnonics, providing a new platform for the development of advanced nano-devices based on orbital-driven magnonic phenomena.
format Preprint
id arxiv_https___arxiv_org_abs_2605_04486
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Giant orbital-magnon conversion driven perpendicular magnetization switching
Meng, Fanyu
Feng, Ying
Sun, Mingyang
Kang, Baiyan
Song, Donglin
Zhang, Tuo
Zhang, Jia
Zhou, Wenping
Zhao, Jijun
Wang, Yi
Mesoscale and Nanoscale Physics
The pursuit of beyond-Moore information technologies has stimulated the exploration of novel information carriers, such as electron spin, orbital, and magnon, beyond electron charge. Efficient interconversion among these degrees of freedom and precise control over the information states are crucial for advancing nanoelectronic devices. However, a direct coupling between orbital angular momentum (L) and magnons (M) has remained elusive, and magnetization switching through orbital-to-magnon (L-M) conversion has not yet been achieved. Here, we report the experimental demonstration of L-M conversion in an orbital metal/antiferromagnetic insulator bilayer at room temperature, with an efficiency over an order of magnitude higher than that in traditional orbital systems lacking the L-M process. Consequently, we achieved efficient room-temperature perpendicular magnetization switching in a CoFeB ferromagnetic layer mediated by this new mechanism. Our findings establish a direct link between orbitronics and magnonics, providing a new platform for the development of advanced nano-devices based on orbital-driven magnonic phenomena.
title Giant orbital-magnon conversion driven perpendicular magnetization switching
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2605.04486