Orbital-resolved single atom magnetism measured with X-ray absorption spectroscopy
Abstract
Lanthanide atoms and molecules are promising candidates for atomic data storage and quantum logic due to the long magnetic lifetime of their electron quantum states. Accessing these states through electrical transport requires the engineering of their electronic configuration down to the level of individual atomic orbitals. Here, we address the magnetism of surface-supported lanthanide atoms, clusters, and films with orbital selectivity using X-ray absorption spectroscopy and magnetic circular dichroism. We exploit the selection rules of electric dipole transitions to reveal the occupation and magnetism of the valence electrons of Gd and Ho deposited on MgO/Ag(100). Comparing our results with multiplet calculations and density functional theory, we identify a charge transfer mechanism that leaves the lanthanide species in an unconventional singly ionized configuration. Our approach allows determining the role of valence electrons on the quantum level structure of lanthanide-based nanostructures.
Keywords
Cite
@article{arxiv.2012.10972,
title = {Orbital-resolved single atom magnetism measured with X-ray absorption spectroscopy},
author = {Aparajita Singha and Daria Sostina and Christoph Wolf and Safa L. Ahmed and Denis Krylov and Luciano Colazzo and Pierluigi Gargiani and Stefano Agrestini and Woo-Suk Noh and Jae-Hoon Park and Marina Pivetta and Stefano Rusponi and Harald Brune and Andreas J. Heinrich and Alessandro Barla and Fabio Donati},
journal= {arXiv preprint arXiv:2012.10972},
year = {2020}
}