Insights into ultrafast demagnetization in pseudo-gap half metals
arXiv:1202.3874 · doi:10.1103/PhysRevX.2.041008
Abstract
Interest in femtosecond demagnetization experiments was sparked by Bigot's discovery in 1995. These experiments unveil the elementary mechanisms coupling the electrons' temperature to their spin order. Even though first quantitative models describing ultrafast demagnetization have just been published within the past year, new calculations also suggest alternative mechanisms. Simultaneously, the application of fast demagnetization experiments has been demonstrated to provide key insight into technologically important systems such as high spin polarization metals, and consequently there is broad interest in further understanding the physics of these phenomena. To gain new and relevant insights, we perform ultrafast optical pump-probe experiments to characterize the demagnetization processes of highly spin-polarized magnetic thin films on a femtosecond time scale. Previous studies have suggested shifting the Fermi energy into the center of the gap by tuning the number of electrons and thereby to study its influence on spin-flip processes. Here we show that choosing isoelectronic Heusler compounds (Co2MnSi, Co2MnGe and Co2FeAl) allows us to vary the degree of spin polarization between 60% and 86%. We explain this behavior by considering the robustness of the gap against structural disorder. Moreover, we observe that Co-Fe-based pseudo gap materials, such as partially ordered Co-Fe-Ge alloys and also the well-known Co-Fe-B alloys, can reach similar values of the spin polarization. By using the unique features of these metals we vary the number of possible spin-flip channels, which allows us to pinpoint and control the half metals electronic structure and its influence onto the elementary mechanisms of ultrafast demagnetization.
17 pages, 4 figures, plus Supplementary Information
References in corpus (7)
- Calculated electronic and magnetic properties of the half-metallic, transition metal based Heusler compounds
- Super-Diffusive Spin-Transport as a Mechanism of Ultrafast Demagnetization
- Identification of the dominant precession damping mechanism in Fe, Co, and Ni by first-principles calculations
- The influence of photon angular momentum on ultrafast spin dynamics in Nickel
- Non-quasiparticle states in CoMnSi evidenced through magnetic tunnel junction spectroscopy measurements
- Connecting the timescales in picosecond remagnetization experiments
- Spin tunneling in junctions with disordered ferromagnets
Cited by in corpus (5)
- Perspective: Ultrafast magnetism and THz spintronics
- Structural and Magnetic Dynamics in the Magnetic Shape Memory Alloy NiMnGa
- Transient quantum isolation and critical behavior in the magnetization dynamics of half-metallic manganites
- Manifestation of intra-atomic 5d6s-4f exchange coupling in photoexcited gadolinium
- First principles calculations of steady-state voltage-controlled magnetism: application to x-ray absorption spectroscopy experiment