Influence of laser-excited electron distributions on the x-ray magnetic circular dichroism spectra: Implications for femtosecond demagnetization in Ni
arXiv:0906.1700 · doi:10.1209/0295-5075/86/57002
Abstract
In pump-probe experiments an intensive laser pulse creates non-equilibrium excited electron distributions in the first few hundred femtoseconds after the pulse. The influence of non-equilibrium electron distributions caused by a pump laser on the apparent X-ray magnetic circular dichroism (XMCD) signal of Ni is investigated theoretically here for the first time, considering electron distributions immediately after the pulse as well as thermalized ones, that are not in equilibrium with the lattice or spin systems. The XMCD signal is shown not to be simply proportional to the spin momentum in these situations. The computed spectra are compared to recent pump-probe XMCD experiments on Ni. We find that the majority of experimentally observed features considered to be a proof of ultrafast spin momentum transfer to the lattice can alternatively be attributed to non-equilibrium electron distributions. Furthermore, we find the XMCD sum rules for the atomic spin and orbital magnetic moment to remain valid, even for the laser induced non-equilibrium electron distributions.
6 pages, 3 figures
Cited by in corpus (20)
- Super-Diffusive Spin-Transport as a Mechanism of Ultrafast Demagnetization
- Femtosecond x-ray absorption spectroscopy of spin and orbital angular momentum in photoexcited Ni films during ultrafast demagnetization
- Driving ferromagnets into a critical region of a magnetic phase diagram
- Distinct Ultrafast Electronic and Magnetic Response in M-edge Magnetic Circular Dichroism
- Optically controlling the competition between spin flips and intersite spin transfer in a Heusler half-metal on sub-100 fs timescales
- The interplay of local electron correlations and ultrafast spin dynamics in fcc Ni
- Ab initio investigation of laser-induced ultrafast demagnetization of L1 FePt: Intensity dependence and importance of electron coherence
- Unraveling Femtosecond Spin and Charge Dynamics with EUV T-MOKE Spectroscopy
- Verification of ultrafast spin transfer effects in FeNi alloys
- Element resolved evidence of superdiffusive terahertz spin current arising from ultrafast demagnetization process
- Modeling of ultrafast X-ray induced magnetization dynamics in magnetic multilayer systems
- Electron Dynamics at High-Energy Densities in Nickel from Non-linear Resonant X-ray Absorption Spectra
- Ultrafast behavior of induced and intrinsic magnetic moments in CoFeB/Pt bilayers probed by element-specific measurements in the extreme ultraviolet spectral range
- Electronic origin of x-ray absorption peak shifts
- A Rate Model of Electron Populations for Non-linear High-Fluence X-ray Absorption Near-Edge Spectra
- Ultrafast demagnetization in bulk nickel induced by X-ray photons tuned to Ni and absorption edges
- Using the photo-induced resonance shift in Fe and Ni as time reference for ultrafast experiments at low flux soft X-ray sources
- Time-Resolved XUV absorption spectroscopy and magnetic circular dichroism at the Ni -edges
- Electronic mechanism of sub-100-fs demagnetization induced by a femtosecond light pulse
- Femtosecond charge and spin dynamics in CoPt alloys