4.5 Article

Theoretical studies on acetylene cyclotrimerization into benzene catalyzed by CpIr fragment

Journal

JOURNAL OF ORGANOMETALLIC CHEMISTRY
Volume 748, Issue -, Pages 29-35

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.jorganchem.2013.03.036

Keywords

Alkyne cyclotrimerization; Oxidative coupling; Diels-Alder cycloaddition; Density functional theory; CpIr catalyst

Funding

  1. Natural Science Foundations of China [21031003]
  2. Shanxi Scholarship Council of China [2012-057]
  3. BMBF
  4. State of Mecklenburg-Western Pommerania

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Using the B3LYP density functional theory method we have computed the potential energy surface of the (eta(5)-C5H5)Ir-catalyzed acetylene cyclotrimerization. The first step is the oxidative addition which forms the iridacyclopentadiene complex (2) from the bisacetylene complex (eta(5)-C5H5)Ir(eta(5)-HCCH)(2) (1), and this is the rate-determining step. On the potential energy surface, acetylene addition to complex (2) forms the iridacyclopentadiene(acetylene) complex (3), and this step is barrier-free and highly exergonic; and complex (3) forms the benzene complex (4) via an intramolecular [4 + 2] cycloaddition. Alternatively, complex (2) and acetylene form the iridabicyclo[3.2.0]heptatriene complex (5) via an intermolecular [2 + 2] cycloaddition, and complex (5) can further isomerize into the aromatic iridacycloheptatriene complex (6a), which is a trap on the potential energy surface. This potential energy surface is qualitatively close to that for the CpRh-catalyzed reaction, but differs strongly from that for the CpCo-catalyzed reaction, which undergoes a spin crossing (or non-adiabatic) mechanism. The differences among these mechanisms as well as the relative stability of their intermediates have been compared and discussed accordingly. (C) 2013 Elsevier B.V. All rights reserved.

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