| Literature DB >> 32004033 |
Hanchen Wang1, Jilei Chen1,2, Tao Liu3, Jianyu Zhang1, Korbinian Baumgaertl2, Chenyang Guo4, Yuehui Li5,6, Chuanpu Liu1,3, Ping Che2, Sa Tu1, Song Liu7, Peng Gao5,6,8, Xiufeng Han4, Dapeng Yu5,7, Mingzhong Wu3, Dirk Grundler2,9, Haiming Yu1.
Abstract
Spin waves can probe the Dzyaloshinskii-Moriya interaction (DMI), which gives rise to topological spin textures, such as skyrmions. However, the DMI has not yet been reported in yttrium iron garnet (YIG) with arguably the lowest damping for spin waves. In this work, we experimentally evidence the interfacial DMI in a 7-nm-thick YIG film by measuring the nonreciprocal spin-wave propagation in terms of frequency, amplitude, and most importantly group velocities using all electrical spin-wave spectroscopy. The velocities of propagating spin waves show chirality among three vectors, i.e., the film normal direction, applied field, and spin-wave wave vector. By measuring the asymmetric group velocities, we extract a DMI constant of 16 μJ/m^{2}, which we independently confirm by Brillouin light scattering. Thickness-dependent measurements reveal that the DMI originates from the oxide interface between the YIG and garnet substrate. The interfacial DMI discovered in the ultrathin YIG films is of key importance for functional chiral magnonics as ultralow spin-wave damping can be achieved.Entities:
Year: 2020 PMID: 32004033 DOI: 10.1103/PhysRevLett.124.027203
Source DB: PubMed Journal: Phys Rev Lett ISSN: 0031-9007 Impact factor: 9.161