| Literature DB >> 31573192 |
Chencheng Sun1,2, Nedaossadat Mirzadeh3, Si-Xuan Guo1, Jiezhen Li1, Zhengkui Li2, Alan M Bond1, Jie Zhang1, Suresh K Bhargava3.
Abstract
The rational design of binuclear Au(I)-Au(I), Au(II)-Au(II), and Au(I)-Au(III) complexes requires an understanding of how the redox states interconvert. Herein, the electrochemical interconversion of the three oxidation states I, II, and III is reported on the voltammetric (cyclic and rotating disk electrode) time scales for binuclear gold complexes containing C6F4PPh2 as a ligand, to demonstrate for the first time formation of a binuclear Au(II)-Au(II) from a Au(I)-Au(III) complex. Results are supported by bulk electrolysis and coulometry with reaction products being identified by 31P NMR and UV-vis spectroscopy. All electrochemical processes involve an overall two-electron charge-transfer process with no one-electron intermediate being detected. Importantly, the kinetically rather than thermodynamically favored isomer [Au2IIX2(μ-2-C6F4PPh2)2] is formed on redox cycling of [XAuI(μ-2-C6F4PPh2)(κ2-2-C6F4PPh2)AuIIIX] (X = Cl, ONO2). Finally, a mechanism is proposed to explain the simultaneous change of coordination of the chelating carbanionic ligand to bridging mode and interconversion of oxidation states in binuclear gold complexes.Entities:
Year: 2019 PMID: 31573192 DOI: 10.1021/acs.inorgchem.9b01983
Source DB: PubMed Journal: Inorg Chem ISSN: 0020-1669 Impact factor: 5.165