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Engineering Co 2 MnAl x Si 1− x Heusler Compounds as a Model System to Correlate Spin Polarization, Intrinsic Gilbert Damping, and Ultrafast Demagnetization
- Source :
- Advanced Materials. 32:1908357
- Publication Year :
- 2020
- Publisher :
- Wiley, 2020.
-
Abstract
- Engineering of magnetic materials for developing better spintronic applications relies on the control of two key parameters: the spin polarization and the Gilbert damping, responsible for the spin angular momentum dissipation. Both of them are expected to affect the ultrafast magnetization dynamics occurring on the femtosecond timescale. Here, engineered Co2 MnAlx Si1- x Heusler compounds are used to adjust the degree of spin polarization at the Fermi energy, P, from 60% to 100% and to investigate how they correlate with the damping. It is experimentally demonstrated that the damping decreases when increasing the spin polarization from 1.1 × 10-3 for Co2 MnAl with 63% spin polarization to an ultralow value of 4.6 × 10-4 for the half-metallic ferromagnet Co2 MnSi. This allows the investigation of the relation between these two parameters and the ultrafast demagnetization time characterizing the loss of magnetization occurring after femtosecond laser pulse excitation. The demagnetization time is observed to be inversely proportional to 1 - P and, as a consequence, to the magnetic damping, which can be attributed to the similarity of the spin angular momentum dissipation processes responsible for these two effects. Altogether, the high-quality Heusler compounds allow control over the band structure and therefore the channel for spin angular momentum dissipation.
- Subjects :
- Magnetization dynamics
Materials science
Spintronics
Spin polarization
Condensed matter physics
Mechanical Engineering
Demagnetizing field
Fermi energy
02 engineering and technology
010402 general chemistry
021001 nanoscience & nanotechnology
01 natural sciences
0104 chemical sciences
Magnetization
Ferromagnetism
Mechanics of Materials
Magnetic damping
Condensed Matter::Strongly Correlated Electrons
General Materials Science
0210 nano-technology
Subjects
Details
- ISSN :
- 15214095 and 09359648
- Volume :
- 32
- Database :
- OpenAIRE
- Journal :
- Advanced Materials
- Accession number :
- edsair.doi...........37031369541c5e873af80e6f753c9e10
- Full Text :
- https://doi.org/10.1002/adma.201908357