| Literature DB >> 29167703 |
Koji Sekiguchi1,2, Seo-Won Lee3, Hiroaki Sukegawa4, Nana Sato1, Se-Hyeok Oh5, R D McMichael6, Kyung-Jin Lee3,5,7.
Abstract
The information carrier of modern technologies is the electron charge whose transport inevitably generates Joule heating. Spin-waves, the collective precessional motion of electron spins, do not involve moving charges and thus avoid Joule heating [1-3]. In this respect, magnonic devices in which the information is carried by spin-waves attract interest for low-power computing. However implementation of magnonic devices for practical use suffers from low spin-wave signal and on/off ratio. Here we demonstrate that cubic anisotropy materials can enhance spin-wave signals by improving spin-wave amplitude as well as group velocity and attenuation length. Furthermore, cubic anisotropy material shows an enhanced on/off ratio through a laterally localized edge mode, which closely mimics the gate-controlled conducting channel in traditional field-effect transistors. These attractive features of cubic anisotropy materials will invigorate magnonics research towards wave-based functional devices.Entities:
Year: 2017 PMID: 29167703 PMCID: PMC5695715 DOI: 10.1038/am.2017.87
Source DB: PubMed Journal: NPG Asia Mater ISSN: 1884-4049 Impact factor: 10.481