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Bonding character of intermediates in on-surface Ullmann reactions revealed with energy decomposition analysis
Authors:Jan-Niclas Luy  Pascal Henkel  Daniel Grigjanis  Jannis Jung  Doreen Mollenhauer  Ralf Tonner-Zech
Affiliation:1. Fakultät für Chemie und Mineralogie, Wilhelm-Ostwald-Institut für Physikalische und Theoretische Chemie, Universität Leipzig, Leipzig, Germany

Fachbereich Chemie, Philipps-Universität Marburg, Marburg, Germany;2. Institute of Physical Chemistry, Justus-Liebig University Giessen, Giessen, Germany

Center for Materials Research (LaMa), Justus-Liebig University Giessen, Giessen, Germany;3. Fachbereich Chemie, Philipps-Universität Marburg, Marburg, Germany;4. Institute of Physical Chemistry, Justus-Liebig University Giessen, Giessen, Germany;5. Fakultät für Chemie und Mineralogie, Wilhelm-Ostwald-Institut für Physikalische und Theoretische Chemie, Universität Leipzig, Leipzig, Germany

Abstract:On-surface synthesis has become a thriving topic in surface science. The Ullmann coupling reaction is the most applied synthetic route today, but the nature of the organometallic intermediate is still under discussion. We investigate the bonding nature of prototypical intermediate species (phenyl, naphthyl, anthracenyl, phenanthryl, and triphenylenyl) on the Cu(111) surface with a combination of plane wave and atomic orbital basis set methods using density functional theory calculations with periodic boundary conditions. The surface bonding is shown to be of covalent nature with a polarized shared-electron bond supported by π-back donation effects using energy decomposition analysis for extended systems (pEDA). The bond angle of the intermediates is determined by balancing dispersion attraction and Pauli repulsion between adsorbate and surface. The latter can be significantly reduced by adatoms on the surface. We furthermore investigate how to choose computational parameters for pEDA of organic adsorbates on metal surfaces efficiently and show that bonding interpretation requires consistent choice of the density functional.
Keywords:chemical bonding  density functional theory  energy decomposition analysis  on-surface synthesis
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