Structural and Theoretical Basis for Ligand Exchange on Thiolate Monolayer Protected Gold Nanoclusters.

Ligand exchange reactions are widely used for imparting new functionality on or integrating nanoparticles into devices. Thiolate-for-thiolate ligand exchange in monolayer protected gold nanoclusters has been used for over a decade; however, a firm structural basis of this reaction has been lacking....

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Detalles Bibliográficos
Publicado en:Journal of the American Chemical Society Vol. 134; no. 32; pp. 13316 - 13323
Autores principales: Heinecke, Christine L., Ni, Thomas W., Malola, Sami, Mäkinen, Ville, Wong, O. Andrea, Häkkinen, Hannu, Ackerson, Christopher J.
Formato: Artículo
Publicado: American Chemical Society 8/15/2012
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Acceso en línea:Ver este registro en EBSCOhost
Descripción
Sumario:Ligand exchange reactions are widely used for imparting new functionality on or integrating nanoparticles into devices. Thiolate-for-thiolate ligand exchange in monolayer protected gold nanoclusters has been used for over a decade; however, a firm structural basis of this reaction has been lacking. Herein, we present the first single-crystal X-ray structure of a partially exchanged Au(p-MBA)(p-BBT) (p-MBA = para-mercaptobenzoic acid, p-BBT = para-bromobenzene thiol) with p-BBT as the incoming ligand. The crystal structure shows that 2 of the 22 symmetry-unique p-MBA ligand sites are partially exchanged to p-BBT under the initial fast kinetics in a 5 min timescale exchange reaction. Each of these ligand-binding sites is bonded to a different solvent-exposed Au atom, suggesting an associative mechanism for the initial ligand exchange. Density functional theory calculations modeling both thiol and thiolate incoming ligands postulate a mechanistic pathway for thiol-based ligand exchange. The discrete modification of a small set of ligand binding sites suggests Au(p-MBA) as a powerful platform for surface chemical engineering.