| Literature DB >> 28691378 |
Satoru Emori1, Benjamin A Gray2, Hyung-Min Jeon3, Joseph Peoples2, Maxwell Schmitt2, Krishnamurthy Mahalingam2, Madelyn Hill2, Michael E McConney2, Matthew T Gray1, Urusa S Alaan1, Alexander C Bornstein1, Padraic Shafer4, Alpha T N'Diaye4, Elke Arenholz4, Greg Haugstad5, Keng-Yuan Meng6, Fengyuan Yang6, Dongyao Li7, Sushant Mahat7, David G Cahill7, Pallavi Dhagat8, Albrecht Jander8, Nian X Sun9, Yuri Suzuki1, Brandon M Howe2.
Abstract
Low-loss magnetization dynamics and strong magnetoelastic coupling are generally mutually exclusive properties due to opposing dependencies on spin-orbit interactions. So far, the lack of low-damping, magnetostrictive ferrite films has hindered the development of power-efficient magnetoelectric and acoustic spintronic devices. Here, magnetically soft epitaxial spinel NiZnAl-ferrite thin films with an unusually low Gilbert damping parameter (<3 × 10-3 ), as well as strong magnetoelastic coupling evidenced by a giant strain-induced anisotropy field (≈1 T) and a sizable magnetostriction coefficient (≈10 ppm), are reported. This exceptional combination of low intrinsic damping and substantial magnetostriction arises from the cation chemistry of NiZnAl-ferrite. At the same time, the coherently strained film structure suppresses extrinsic damping, enables soft magnetic behavior, and generates large easy-plane magnetoelastic anisotropy. These findings provide a foundation for a new class of low-loss, magnetoelastic thin film materials that are promising for spin-mechanical devices.Entities:
Keywords: epitaxy; ferromagnetic resonance; magnetic damping; magnetostriction; spinel ferrite
Year: 2017 PMID: 28691378 DOI: 10.1002/adma.201701130
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849