Another Torture Track for Quantum Chemistry: Reinvestigation of the Benzaldehyde Amidation by Nitrogen‐Atom Transfer from Platinum(II) and Palladium(II) Metallonitrenes

Author:

Verplancke Hendrik1ORCID,Diefenbach Martin12ORCID,Lienert Jonas N.1ORCID,Ugandi Mihkel3ORCID,Kitsaras Marios‐Petros45ORCID,Roemelt Michael3ORCID,Stopkowicz Stella456ORCID,Holthausen Max C.1ORCID

Affiliation:

1. Institut für Anorganische und Analytische Chemie Goethe-Universität Max-von-Laue-Str.7 60438 Frankfurt am Main Germany

2. Fachbereich Chemie Theoretische Chemie Technische Universität Darmstadt Alarich-Weiss-Straße 4 64287 Darmstadt Germany

3. Institut für Chemie Humboldt-Universität zu Berlin Brook-Taylor-Straße 2 12489 Berlin Germany

4. Department Chemie Johannes Gutenberg-Universität Mainz Duesbergweg 10–14 55128 Mainz Germany

5. Fachrichtung Chemie Universität des Saarlandes Campus B2.2 66123 Saarbrücken Germany

6. Hylleraas Centre for Quantum Molecular Sciences Department of Chemistry University of Oslo P.O. Box 1033 N-0315 Oslo Norway

Abstract

AbstractWe showcase here a dramatic failure of CCSD(T) theory that originates from the pronounced multi‐reference character of a key intermediate formed in the benzaldehyde amidation by N‐atom transfer from Pd(II) and Pt(II) metallonitrenes studied recently in combined experimental and theoretical work. For detailed analysis we devised a minimal model system, for which we established reliable reference energies based on approximate full configuration interaction theory, to assess the performance of single‐reference coupled‐cluster theory up to the CCSDTQ(P) excitation level. While RHF‐based CCSD(T) theory suffered dramatic errors, in one case exceeding 220 kcal mol−1, we show that the use of broken‐symmetry (BS) or Kohn‐Sham (KS) orbital references yields substantially improved CCSD(T) results. Further, the EOM‐SF‐CCSD(T)(a)* approach met the reference data with excellent accuracy. We applied the KS‐CCSD(T*)‐F12b variant as high‐level part of an ONIOM(KS‐CC:DFT) scheme to reinvestigate the reactivity of the full Pt(II) and Pd(II) metallonitrenes. The revised reaction pathway energetics provide a detailed mechanistic rationale for the experimental observations.

Publisher

Wiley

Subject

General Chemistry

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