Electric Field Control of Magnetoresistance in Epitaxial Fe<sub>0.75</sub>Co<sub>0.25</sub> in Composite Multiferroics
ORAL
Abstract
Composite multiferroics that integrate ferroelectric and magnetic properties can function above room temperature and exhibit improved magnetoelectric (ME) coupling compared to single-phase multiferroic materials, making them desirable candidates for both studying the fundamental physics of ME coupling and applications for future novel devices.1 Further, these composite multiferroics present an opportunity to alter magnon generation and propagation via electrical methods. In this study, we investigate the magnetization dynamics of MBE-grown Fe0.75Co0.25, a metallic ferromagnet with low damping and high magnetoelastic constant, epitaxially grown on ferroelectric materials.2–4 Electric field manipulation of magnetoresistance is observed and further characterized using transport and optical techniques.
References
1. Pradhan, D. K., Kumari, S. & Rack, P. D. Magnetoelectric Composites: Applications, Coupling Mechanisms, and Future Directions. Nanomaterials (Basel) 10, 2072 (2020).
2. Edwards, E. R. J., Nembach, H. T. & Shaw, J. M. Co25Fe75 Thin Films with Ultralow Total Damping of Ferromagnetic Resonance. Phys. Rev. Appl. 11, 054036 (2019).
3. Lee, A. J. et al. Metallic ferromagnetic films with magnetic damping under 1.4 × 10−3. Nat Commun 8, 234 (2017).
4. Schwienbacher, D. et al. Magnetoelasticity of Co25Fe75 thin films. J Appl Phys 126, https://doi.org/10.1063/1.5116314 (2019).
References
1. Pradhan, D. K., Kumari, S. & Rack, P. D. Magnetoelectric Composites: Applications, Coupling Mechanisms, and Future Directions. Nanomaterials (Basel) 10, 2072 (2020).
2. Edwards, E. R. J., Nembach, H. T. & Shaw, J. M. Co25Fe75 Thin Films with Ultralow Total Damping of Ferromagnetic Resonance. Phys. Rev. Appl. 11, 054036 (2019).
3. Lee, A. J. et al. Metallic ferromagnetic films with magnetic damping under 1.4 × 10−3. Nat Commun 8, 234 (2017).
4. Schwienbacher, D. et al. Magnetoelasticity of Co25Fe75 thin films. J Appl Phys 126, https://doi.org/10.1063/1.5116314 (2019).
*DAGSI (RX22-OSU-22-1)
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Presenters
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Katherine Robinson
- Ohio State University