Molecular spin-probe sensing of H-mediated changes in Co nanomagnets

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Fétida, A., Bengone, O., Goyhenex, C., Scheurer, F., Robles, R., Lorente, N., Limot, L.
Format: Preprint
Published: 2024
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866929486254047232
author Fétida, A.
Bengone, O.
Goyhenex, C.
Scheurer, F.
Robles, R.
Lorente, N.
Limot, L.
author_facet Fétida, A.
Bengone, O.
Goyhenex, C.
Scheurer, F.
Robles, R.
Lorente, N.
Limot, L.
contents The influence of hydrogen on magnetization is of significant interest to spintronics. Understanding and controlling this phenomenon at the atomic scale, particularly in nanoscale systems, is crucial. In this study, we utilized scanning tunneling microscopy (STM) combined with a nickelocene molecule to sense the spin of a hydrogen-loaded nanoscale Co island grown on Cu(111). Magnetic exchange maps obtained from the molecular tip revealed the presence of a hydrogen superstructure and a 90$^{\circ}$ rotation of the magnetization compared to the pristine island. \textit{Ab initio} calculations corroborate these observations, indicating that hydrogen hybridization with Co atoms on the island surface drives the spin reorientation of the island. This reorientation is further reinforced by hydrogen penetration into the island that locates at the Co/Cu interface. However, the subsurface sensitivity of the magnetic exchange maps indicate that this effect is limited. Our study provides valuable microscopic insights into the chemical control of magnetism at the nanoscale.
format Preprint
id arxiv_https___arxiv_org_abs_2409_02726
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Molecular spin-probe sensing of H-mediated changes in Co nanomagnets
Fétida, A.
Bengone, O.
Goyhenex, C.
Scheurer, F.
Robles, R.
Lorente, N.
Limot, L.
Materials Science
Mesoscale and Nanoscale Physics
The influence of hydrogen on magnetization is of significant interest to spintronics. Understanding and controlling this phenomenon at the atomic scale, particularly in nanoscale systems, is crucial. In this study, we utilized scanning tunneling microscopy (STM) combined with a nickelocene molecule to sense the spin of a hydrogen-loaded nanoscale Co island grown on Cu(111). Magnetic exchange maps obtained from the molecular tip revealed the presence of a hydrogen superstructure and a 90$^{\circ}$ rotation of the magnetization compared to the pristine island. \textit{Ab initio} calculations corroborate these observations, indicating that hydrogen hybridization with Co atoms on the island surface drives the spin reorientation of the island. This reorientation is further reinforced by hydrogen penetration into the island that locates at the Co/Cu interface. However, the subsurface sensitivity of the magnetic exchange maps indicate that this effect is limited. Our study provides valuable microscopic insights into the chemical control of magnetism at the nanoscale.
title Molecular spin-probe sensing of H-mediated changes in Co nanomagnets
topic Materials Science
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2409.02726