Literature DB >> 28509543

Exploring the Gas-Phase Activation and Reactivity of a Ruthenium Transfer Hydrogenation Catalyst by Experiment and Theory in Concert.

Fabian S Menges1, Johannes Lang2, Yevgeniy Nosenko2, Christian Kerner2, Maximilian Gaffga2, Leila Taghizadeh Ghoochany2, Werner R Thiel2, Christoph Riehn2, Gereon Niedner-Schatteburg2.   

Abstract

This study elucidates structures, activation barriers, and the gas-phase reactivity of cationic ruthenium transfer hydrogenation catalysts of the structural type [(η6-cym)RuX(pympyr)]+. In these complexes, the central ruthenium(+II) ion is coordinated to an η6-bound p-cymene (η6-cym), a bidentate 2-R-4-(2-pyridinyl)pyrimidine ligand (pympyr) with R = NH2 or N(CH3)2, and an anion X = I-, Br-, Cl-, or CF3SO3-. We present infrared multiple-photon dissociation (IR-MPD) spectra of precursors (before HCl loss) and of activated complexes (after HCl loss), which elucidates C-H activation as the key step in the activation mechanism. A resonant two-color IR-MPD scheme serves to record several otherwise "dark" bands and enhances the validity of spectral assignments. We show that collision-induced dissociation (CID)-derived activation energies of the [(η6-cym)RuX(pympyr)]+ (R = N(CH3)2) complexes depend crucially on the anion X. The obtained activation energies for the HX loss correlate well with quantum chemical activation barriers and are in line with the HSAB concept. We further elucidate the reaction of the activated complexes with D2 under single-collision conditions. Quantum mechanical simulations substantiate that the resulting species represent analogues for hydrido intermediates formed after abstraction of H+ and H- from isopropanol, as postulated for the catalytic cycle of transfer hydrogenation by us before.

Entities:  

Year:  2017        PMID: 28509543     DOI: 10.1021/acs.jpca.7b02459

Source DB:  PubMed          Journal:  J Phys Chem A        ISSN: 1089-5639            Impact factor:   2.781


  2 in total

1.  Characterization of the non-covalent docking motif in the isolated reactant complex of a double proton-coupled electron transfer reaction with cryogenic ion spectroscopy.

Authors:  Evan H Perez; Fabian S Menges; Mauricio Cattaneo; James M Mayer; Mark A Johnson
Journal:  J Chem Phys       Date:  2020-06-21       Impact factor: 3.488

Review 2.  Advancing Inorganic Coordination Chemistry by Spectroscopy of Isolated Molecules: Methods and Applications.

Authors:  Gereon Niedner-Schatteburg; Manfred M Kappes
Journal:  Chemistry       Date:  2021-10-27       Impact factor: 5.236

  2 in total

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