Correcting the Energy-Dependent Asymmetry in Low-Energy SR
arXiv:2604.11160 · doi:10.1063/5.0338740
Abstract
Low-energy SR (LE-SR) enables depth-resolved studies of magnetic and electronic properties from the surface into the near-surface region, but the measured transverse-field asymmetry is not an intrinsic constant and depends on implantation energy and beamline conditions. Following an upgrade of the single-muon tagging system at the LEM beamline at PSI in 2023, updated asymmetry calibrations became necessary. Here, we present updated reference measurements that establish the energy-dependent maximum asymmetry using a silver reference and quantify spurious contributions from reflected muons using a nickel reference. In addition, we address systematic reductions of the measured asymmetry arising from incomplete beam--sample overlap by introducing a sample-size-dependent correction factor. This factor is obtained from musrSim/Geant4 simulations incorporating an updated electrostatic field map of the sample environment and is benchmarked using implantation-energy scans on SrTiO samples of different lateral dimensions. Together, these updated calibrations and the simulation-based overlap correction provide a practical and up-to-date framework for LE-SR data correction under current beam conditions and enable quantitative depth-resolved analysis of volume fractions.
References in corpus (4)
- Direct spectroscopic observation of a shallow hydrogen-like donor state in insulating SrTiO
- Small sample measurements at the low energy muon facility of Paul Scherrer Institute
- Improving the low-energy muon beam quality of the LEM beamline at PSI: Characterisation of ultra-thin carbon foils
- Monitoring the tagging efficiency of the Low-Energy Muon beamline through background analysis: Insights into the long-term performance of ultrathin carbon foils