Atomic‐Scale Control of Substrate‐Spin Coupling Via Vertical Manipulation of a 2D Metal‐Organic Framework

Two-dimensional (2D) materials with frustrated crystal geometries can host strongly correlated electrons, potentially leading to a range of exotic many-body quantum phases, such as Mott insulators, quantum spin-liquids, and Kondo lattices. The ability to control exchange-coupling within these systems is therefore highly desirable. Here, we use an atomically sharp scanning tunneling microscope probe to vertically manipulate a 2D Mott insulating honeycomb-kagome metal-organic framework (MOF) featuring Kondo-screened local magnetic moments on Ag(111). We show that by controlling the adsorption height of the MOF, we can also controllably and reversibly change the strength of Kondo coupling between the MOF's local spins and the substrate's conduction electrons. This mechanical control of Kondo coupling could be extended to other forms of interlayer exchange coupling, potentially allowing for atomic-scale design or control of spintronics technologies.

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Journal
Small
Published
2026-10-05
DOI
https://doi.org/10.1002/smll.75928
Primary Topic
Advanced Condensed Matter Physics
Type
article
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article

Atomic‐Scale Control of Substrate‐Spin Coupling Via Vertical Manipulation of a 2D Metal‐Organic Framework

Oleksandr Stetsovych, Julian Ceddia, Benjamin Löwe, Amelia Domínguez-Celorrio et al.
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Advanced Condensed Matter Physics
article

Atomic‐Scale Control of Substrate‐Spin Coupling Via Vertical Manipulation of a 2D Metal‐Organic Framework

Oleksandr Stetsovych, Julian Ceddia, Benjamin Löwe, Amelia Domínguez-Celorrio, Agustin Schiffrin, Sinéad M. Griffin, Jack T. Hellerstedt, Pavel Jelı́nek, Dhaneesh Kumar, Andrés Pinar Solé, Daniel Moreno Cerrada
article en

Abstract

Two-dimensional (2D) materials with frustrated crystal geometries can host strongly correlated electrons, potentially leading to a range of exotic many-body quantum phases, such as Mott insulators, quantum spin-liquids, and Kondo lattices. The ability to control exchange-coupling within these systems is therefore highly desirable. Here, we use an atomically sharp scanning tunneling microscope probe to vertically manipulate a 2D Mott insulating honeycomb-kagome metal-organic framework (MOF) featuring Kondo-screened local magnetic moments on Ag(111). We show that by controlling the adsorption height of the MOF, we can also controllably and reversibly change the strength of Kondo coupling between the MOF's local spins and the substrate's conduction electrons. This mechanical control of Kondo coupling could be extended to other forms of interlayer exchange coupling, potentially allowing for atomic-scale design or control of spintronics technologies.

Small
Lawrence Berkeley National Laboratory (US), ARC Centre of Excellence in Future Low-Energy Electronics Technologies (AU), FZU ‒ Institute of Physics of the Academy of Sciences of the Czech Republic (CZ), Monash University (AU)
Openalex Percentile: Top 96%
Advanced Condensed Matter Physics
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