Kicking Co and Rh atoms on a row-wise antiferromagnet

Fuente: arXiv
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Main Authors: Zahner, Felix, Haldar, Soumyajyoti, Wiesendanger, Roland, Heinze, Stefan, von Bergmann, Kirsten, Kubetzka, André
Format: Preprint
Published: 2024
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author Zahner, Felix
Haldar, Soumyajyoti
Wiesendanger, Roland
Heinze, Stefan
von Bergmann, Kirsten
Kubetzka, André
author_facet Zahner, Felix
Haldar, Soumyajyoti
Wiesendanger, Roland
Heinze, Stefan
von Bergmann, Kirsten
Kubetzka, André
contents Diffusion on surfaces is a fundamental process in surface science, governing nanostructure and film growth, molecular self-assembly, and chemical reactions. Atom motion on non-magnetic surfaces has been studied extensively both theoretically and by real-space imaging techniques. For magnetic surfaces density functional theory (DFT) calculations have predicted strong effects of the magnetic state onto adatom diffusion, but to date no corresponding experimental data exists. Here, we investigate Co and Rh atoms on a hexagonal magnetic layer, using scanning tunneling microscopy (STM) and DFT calculations. Experimentally, we "kick" atoms by local voltage pulses and thereby initiate strictly one-dimensional motion which is dictated by the row-wise antiferromagnetic (AFM) state. Our calculations show that the one-dimensional motion of Co and Rh atoms results from conserving the Co spin direction during movement and avoiding high induced Rh spin moments, respectively. These findings demonstrate that magnetism can be a means to control adatom mobility.
format Preprint
id arxiv_https___arxiv_org_abs_2405_20472
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Kicking Co and Rh atoms on a row-wise antiferromagnet
Zahner, Felix
Haldar, Soumyajyoti
Wiesendanger, Roland
Heinze, Stefan
von Bergmann, Kirsten
Kubetzka, André
Materials Science
Diffusion on surfaces is a fundamental process in surface science, governing nanostructure and film growth, molecular self-assembly, and chemical reactions. Atom motion on non-magnetic surfaces has been studied extensively both theoretically and by real-space imaging techniques. For magnetic surfaces density functional theory (DFT) calculations have predicted strong effects of the magnetic state onto adatom diffusion, but to date no corresponding experimental data exists. Here, we investigate Co and Rh atoms on a hexagonal magnetic layer, using scanning tunneling microscopy (STM) and DFT calculations. Experimentally, we "kick" atoms by local voltage pulses and thereby initiate strictly one-dimensional motion which is dictated by the row-wise antiferromagnetic (AFM) state. Our calculations show that the one-dimensional motion of Co and Rh atoms results from conserving the Co spin direction during movement and avoiding high induced Rh spin moments, respectively. These findings demonstrate that magnetism can be a means to control adatom mobility.
title Kicking Co and Rh atoms on a row-wise antiferromagnet
topic Materials Science
url https://arxiv.org/abs/2405.20472