Ultra-long-range spin coupling in graphene revealed by atomically resolved spin excitations

B Beatriz Viña-Bausá A António Tavares Costa J Joao Henriques E Eva Cortés-del Río R Roberto Carrasco P Pierre Mallet J Jean-Yves Veuillen J Joaquín Fernández-Rossier I Iván Brihuega

Abstract

Abstract Magnetic interactions between localized spins-½ play a central role in quantum magnetism, spin-based quantum computing, and quantum simulation. The range and strength of these interactions are key figures of merit. Here, we probe exchange interactions in pairs of spins-½ introduced by chemisorption of individual hydrogen atoms on graphene. Using scanning tunneling microscopy and inelastic electron tunneling spectroscopy, supported by large-scale mean-field Hubbard calculations, we demonstrate 3 meV exchange couplings at separations beyond 10 nm, surpassing all prior systems. The couplings can be ferro- or antiferromagnetic depending on the relative sublattice arrangement. Real-space mapping of spin excitation amplitudes enables characterization with atomic-resolution. Through atomic manipulation we extend this control to spin trimers, revealing collective spin excitations when pairwise exchange couplings are comparable.

Article Details

Volume / Issue Vol. 17, Issue 1
Published May 19, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (9)

B

Beatriz Viña-Bausá

A

António Tavares Costa

J

Joao Henriques

E

Eva Cortés-del Río

R

Roberto Carrasco

P

Pierre Mallet

J

Jean-Yves Veuillen

J

Joaquín Fernández-Rossier

I

Iván Brihuega