» Articles » PMID: 27593411

Homoleptic Gold Acetonitrile Complexes with Medium to Very Weakly Coordinating Counterions: Effect on Aurophilicity?

Overview
Journal Chemistry
Specialty Chemistry
Date 2016 Sep 6
PMID 27593411
Citations 5
Authors
Affiliations
Soon will be listed here.
Abstract

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.

Citing Articles

Pushing redox potentials to highly positive values using inert fluorobenzenes and weakly coordinating anions.

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.


Linear-Structure Single-Atom Gold(I) Catalyst for Dehydrogenative Coupling of Organosilanes with Alcohols.

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.


Single-ion conducting polymer electrolytes as a key jigsaw piece for next-generation battery applications.

Gao J, Wang C, Han D, Shin D Chem Sci. 2021; 12(40):13248-13272.

PMID: 34777744 PMC: 8528010. DOI: 10.1039/d1sc04023e.


Facile and systematic access to the least-coordinating WCA [(RO)Al-F-Al(OR)] and its more Lewis-basic brother [F-Al(OR)] (R = C(CF)).

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.