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February 2, 2026ACS Nano0 citationsOpen Access

Adsorption-Induced Surface Magnetism

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MBMiloš BaljozovićSKShiladitya KarmakarACAndré L. Fernandes Cauduro

Key Points

  • The study aims to understand how adsorption of heterohelicene molecules can induce magnetism in a nonmagnetic copper surface.
  • Conducted spin-polarized low-energy electron microscopy on TO[11]H monolayers on Cu(100) surface.
  • Performed control experiments with clean Cu(100) and TO[11]H on graphite.
  • Utilized spin-polarized density functional theory calculations to analyze hybridization effects.
  • Applied an extended Newns-Anderson-Grimley model to assess magnetism based on Coulomb interactions.
  • Demonstrated spin-dependent electron reflectivity in TO[11]H on Cu(100), indicating localized spin-polarized state.
  • Excluded artifacts and chirality-induced effects as causes of observed magnetism.
  • Identified strong chemisorption as key to spin polarization due to hybridization of molecular HOMO with copper states.
  • Reproduced interfacial spin polarization with increase in interaction strength based on theoretical model.

Abstract

We report the emergence of adsorption-induced magnetism from heterohelicene molecules on a nonmagnetic Cu(100) surface. Spin-polarized low-energy electron microscopy measurements reveal spin-dependent electron reflectivity for enantiopure 7,12,17-trioxa11helicene (TO11H) monolayers, indicating the formation of a spin-polarized state localized in the topmost copper layer. Control experiments on clean Cu(100) and TO11H on highly oriented pyrolytic graphite show no such effect, excluding artifacts and chirality-induced spin selectivity as origins. Spin-polarized density functional theory calculations with hybrid functionals attribute the magnetism to strong chemisorption, which induces hybridization between the molecular HOMO and copper s- and d-states, driving asymmetric spin-polarized charge redistribution at the interface. An extended Newns-Anderson-Grimley model incorporating on-site Coulomb repulsion in Cu d-orbitals reproduces the emergence of interfacial spin polarization above a threshold interaction strength, highlighting the key roles of hybridization parameters and Coulomb correlation. These findings reveal a mechanism for inducing magnetism at molecule-metal interfaces without inherently magnetic components, offering avenues for engineering spin-polarized states in organic-inorganic hybrid systems.

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Cite This Study

Baljozović et al. (2026) studied this question.

synapsesocial.com/papers/6980fe48c1c9540dea810400https://doi.org/10.1021/acsnano.5c15791
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