Extremely High Ferromagnetic Resonance Frequency Induced by Triclinic Lattice Distortion in Epitaxial FeCo/MgAl2O4 (001) Films

Author:

Ding Congying12,Wang Le12,Islam Rabiul3,Zhang Shouheng1,Wang Xia1,Li Hongli4,He Wa4,Zhu Xingqi5,Yao Zhao2,Jin Zhejun2,Zhao Guoxia2,Peng Yong4,Miao Guo-Xing3ORCID,Li Shandong12

Affiliation:

1. College of Physics Center for Marine Observation and Communications Qingdao University Qingdao 266071 China

2. College of Electronics and Information Qingdao University Qingdao 266071 China

3. Department of Electrical and Computer Engineering Institute for Quantum Computing University of Waterloo Ontario N2L 3G1 Canada

4. School of Materials and Energy Electron Microscopy Centre of Lanzhou University and Key Laboratory of Magnetism and Magnetic Materials of the Ministry of Education Lanzhou University Lanzhou 730000 P. R. China

5. Beijing Application Lab Bruker China Beijing 100192 China

Abstract

Theoretically, tetragonal lattice distortion of FeCo epitaxial films can result in a very large in‐plane magnetic anisotropy field, leading to an extremely high ferromagnetic resonance (FMR) frequency. Herein, thin films are epitaxially grown on (001) MgAl2O4 single‐crystal substrates. A triclinic lattice distortion with , instead of a tetragonal one, is found in the FeCo films. The cubic symmetry breaking leads to a deviation of easy axes from the directions, forming a distribution of magnetic moments with a strong perpendicular magnetic anisotropy (PMA) along the out‐of‐plane [001] directions and a deviation of the in‐plane components from the ([10 100]) directions. The effective field of the former is as high as 1.5–2.5 T, enough to overcome the thin film shape anisotropy, while that of the latter stays at a low value of around 0.05 T. The strain‐induced PMA gradually relaxes to in‐plane for thicker films with a strained sublayer remaining. As a result, an extremely high out‐of‐plane FMR frequency over 40 GHz is achieved, accompanied by a lower in‐plane FMR frequency around 8 GHz. This study provides a possible approach to prepare self‐biased soft magnetic films with extremely high‐resonance frequency for applications in microwave‐integrated circuits.

Funder

National Natural Science Foundation of China

Natural Sciences and Engineering Research Council of Canada

Canada First Research Excellence Fund

Publisher

Wiley

Subject

Materials Chemistry,Electrical and Electronic Engineering,Surfaces, Coatings and Films,Surfaces and Interfaces,Condensed Matter Physics,Electronic, Optical and Magnetic Materials

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