4.7 Article

The Nature of the Binding of Au, Ag, and Pd to Benzene, Coronene, and Graphene: From Benchmark CCSD(T) Calculations to Plane-Wave DFT Calculations

期刊

JOURNAL OF CHEMICAL THEORY AND COMPUTATION
卷 7, 期 11, 页码 3743-3755

出版社

AMER CHEMICAL SOC
DOI: 10.1021/ct200625h

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资金

  1. Institute of Organic Chemistry and Biochemistry, Academy of Sciences of the Czech Republic [Z40550506]
  2. Korea Science and Engineering Foundation (World Class University) [R32-2008-000-10180-0]
  3. Ministry of Education, Youth and Sports of the Czech Republic [LC512, MSM6198959216]
  4. Grant Agency of the Czech Republic [P208/10/1742]
  5. operational program Research and Development for Innovations of European Regional Development Fund [CZ.1.05/2.1.00/03.0058]
  6. Operational Program Education for Competitiveness of European Social Fund [CZ.1.07/2.3.00/20.0017]
  7. Praemium Academiae, Academy of Sciences of the Czech Republic

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The adsorption of Ag, Au, and Pd atoms on benzene, coronene, and graphene has been studied using post Hartree-Fock wave function theory (CCSD(T), MP2) and density functional theory (M06-2X, DFT-D3, PBE, vdW-DF) methods. The CCSD(T) benchmark binding energies for benzene-M (M = Pd, Au, Ag) complexes are 19.7, 4.2, and 2.3 kcal/mol, respectively. We found that the nature of binding of the three metals is different: While silver binds predominantly through dispersion interactions, the binding of palladium has a covalent character, and the binding of gold involves a subtle combination of charge transfer and dispersion interactions as well as relativistic effects. We demonstrate that the CCSD(T) benchmark binding energies for benzene-M complexes can be reproduced in plane-wave density functional theory calculations by including a fraction of the exact exchange and a nonempirical van der Waals correction (EE+vdW). Applying the EE+vdW method, we obtained binding energies for the graphene-M (M = Pd, Au, Ag) complexes of 17.4, 5.6, and 4.3 kcal/mol, respectively. The trends in binding energies found for the benzene M complexes correspond to those in coronene and graphene complexes. DFT methods that use empirical corrections to account for the effects of vdW interactions significantly overestimate binding energies in some of the studied systems.

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