Ultra-low magnetic damping in Co 2 Mn-based Heusler compounds: promising materials for spintronic
arXiv:1905.08987
Abstract
The prediction of ultra-low magnetic damping in Co 2 MnZ Heusler half-metal thin-film magnets is explored in this study and the damping response is shown to be linked to the underlying electronic properties. By substituting the Z elements in high crystalline quality films (Co 2 MnZ with Z=Si, Ge, Sn, Al, Ga, Sb), electronic properties such as the minority spin band gap, Fermi energy position in the gap and spin polarization can be tuned and the consequence on magnetization dynamics analyzed. The experimental results allow us to directly explore the interplay of spin polarization, spin gap, Fermi energy position and the magnetic damping obtained in these films, together with ab initio calculation predictions. The ultra-low magnetic damping coefficients measured in the range 4.1 10-4-9 10-4 for Co 2 MnSi, Ge, Sn, Sb are the lowest values obtained on a conductive layer and offers a clear experimental demonstration of theoretical predictions on Half-Metal Magnetic Heusler compounds and a pathway for future materials design.
References in corpus (6)
- Spin Transfer Torques
- Half-metallic ferromagnets: From band structure to many-body effects
- All-optical control of ferromagnetic thin films and nanostructures
- Identification of the dominant precession damping mechanism in Fe, Co, and Ni by first-principles calculations
- Low relaxation rate in a low-Z alloy of iron
- Magnonics: Spin Waves Connecting Charges, Spins and Photons