<div class="csl-bib-body">
<div class="csl-entry">Alessio, M., Schäfer, T., Jagau, T.-C., & Grüneis, A. (2025). Quantum-embedded equation-of-motion coupled-cluster approach to single-atom magnets on surfaces. <i>Physical Chemistry Chemical Physics</i>, <i>27</i>(29), 15474–15485. https://doi.org/10.1039/d5cp01059d</div>
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dc.identifier.issn
1463-9076
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dc.identifier.uri
http://hdl.handle.net/20.500.12708/223770
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dc.description.abstract
We investigate electronic states and magnetic properties of transition-metal atoms on surfaces using projection-based density embedding that combines equation-of-motion coupled-cluster singles and doubles (EOM-CCSD) theory with density functional theory (DFT). As a case study, we explore Co adsorbed on MgO(001), an ideal model for single-atom magnet design, known for its record magnetic anisotropy among transition-metal adatoms. Periodic DFT-based calculations of the magnetic anisotropy energy, i.e., the energy required to rotate the magnetization from parallel to perpendicular relative to the surface normal, predict in-plane magnetic anisotropy, contradicting the experimentally observed easy-axis anisotropy. This failure stems from the inability of the approximate density functionals to describe the multiconfigurational, non-aufbau spin states of Co/MgO(001). In contrast, embedded EOM-CCSD calculations on Co/Mg₉O₉ finite models of the adsorption complex capture the system's unquenched orbital angular momentum (L ≈ 3) and strong spin–orbit coupling, leading to easy-axis anisotropy and a spin-inversion energy barrier that agrees with experiment within spectroscopic accuracy. When treating both the oxygen adsorption site and the Co magnetic center at the EOM-CCSD level of theory, embedded calculations accurately reproduce the state ordering, spin–orbit coupling, and susceptibility curve of all-atom EOM-CCSD calculations. These results demonstrate that embedded EOM-CCSD provides a reliable description of the electronic states and magnetic properties of magnetic adsorbates on surfaces, offering a robust framework for future investigations of surface-bound magnetic systems.
en
dc.language.iso
en
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dc.publisher
ROYAL SOC CHEMISTRY
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dc.relation.ispartof
Physical Chemistry Chemical Physics
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dc.subject
Quantum embedding theory
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dc.subject
single-atom magnet
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dc.title
Quantum-embedded equation-of-motion coupled-cluster approach to single-atom magnets on surfaces