Homoleptic Gold Acetonitrile Complexes with Medium to Very Weakly Coordinating Counterions: Effect on Aurophilicity?
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A series of gold acetonitrile complexes [Au(NCMe) ] [WCA] with weakly coordinating counterions (WCAs) was synthesized by the reaction of elemental gold and nitrosyl salts [NO] [WCA] in acetonitrile ([WCA] =[GaCl ] , [B(CF ) ] , [Al(OR ) ] ; R =C(CF ) ). In the crystal structures, the [Au(NCMe) ] units appeared as monomers, dimers, or chains. A clear correlation between the aurophilicity and the coordinating ability of counterions was observed, with more strongly coordinating WCAs leading to stronger aurophilic contacts (distances, C-N stretching frequencies of [Au(NCMe) ] units). An attempt to prepare [Au(L) ] units, even with less weakly basic solvents like CH Cl , led to decomposition of the [Al(OR ) ] anion and formation of [NO(CH Cl ) ] [F(Al(OR ) ) ] . All nitrosyl reagents [NO] [WCA] were generated according to an optimized procedure and were thoroughly characterized by Raman and NMR spectroscopy. Moreover, the to date unknown species [NO] [B(CF ) CN] was prepared. Its reaction with gold unexpectedly produced [Au(NCMe) ] [Au(NCB(CF ) ) ] , in which the cyanoborate counterion acts as an anionic ligand itself. Interestingly, the auroborate anion [Au(NCB(CF ) ) ] behaves as a weakly coordinating counterion, which becomes evident from the crystallographic data and the vibrational spectral characteristics of the [Au(NCMe) ] cation in this complex. Ligand exchange in the only room temperature stable salt of this series, [Au(NCMe) ] [Al(OR ) ] , is facile and, for example, [Au(PPh )(NCMe)] [Al(OR ) ] can be selectively generated. This reactivity opens the possibility to generate various [AuL L ] [Al(OR ) ] salts through consecutive ligand-exchange reactions that offer access to a huge variety of Au complexes for gold catalysis.
Armbruster C, Sellin M, Seiler M, Wurz T, Oesten F, Schmucker M Nat Commun. 2024; 15(1):6721.
PMID: 39112470 PMC: 11306567. DOI: 10.1038/s41467-024-50669-3.
Kadam R, Medved M, Kumar S, Zaoralova D, Zoppellaro G, Badura Z ACS Catal. 2023; 13(24):16067-16077.
PMID: 38125981 PMC: 10729017. DOI: 10.1021/acscatal.3c03937.
Copper-Catalyzed Monooxygenation of Phenols: Evidence for a Mononuclear Reaction Mechanism.
Schneider R, Engesser T, Nather C, Krossing I, Tuczek F Angew Chem Int Ed Engl. 2022; 61(25):e202202562.
PMID: 35344617 PMC: 9323449. DOI: 10.1002/anie.202202562.
Gao J, Wang C, Han D, Shin D Chem Sci. 2021; 12(40):13248-13272.
PMID: 34777744 PMC: 8528010. DOI: 10.1039/d1sc04023e.
Martens A, Weis P, Krummer M, Kreuzer M, Meierhofer A, Meier S Chem Sci. 2018; 9(35):7058-7068.
PMID: 30310626 PMC: 6137444. DOI: 10.1039/c8sc02591f.