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Updated: Jun 13, 2025

In Situ SIMS and IR Spectroscopy of Well-defined Surfaces Prepared by Soft Landing of Mass-selected Ions
Published on: June 16, 2014
Arylation of gold nanoclusters and insights into structure-related CO2 reduction reaction performances
1Department of Chemistry and Centre for Atomic Engineering of Advanced Materials, Key Laboratory of Structure and Functional Regulation of Hybrid Materials of Ministry of Education, Anhui Province Key Laboratory of Chemistry for Inorganic/Organic Hybrid Functionalized Materials, Anhui University Hefei Anhui 230601 P. R. China kangxi_chem@ahu.edu.cn zmz@ahu.edu.cn.
Abstract:
Research on arylgold complexes and ligand-protected gold nanoclusters has proceeded independently thus far due to the difficulty in controllably introducing aryl groups to synthesize arylgold nanoclusters. Herein we synthesized an arylgold Au15 nanocluster, Au15(DPPOE)3(S-Ph p Me)4(Ph)2, thereby bridging the two independent research fields. Tetraarylborates were exploited as arylating agents to transfer aryl groups onto the nanocluster kernel, triggering the arylation of the Au15 cluster while maintaining the molecular framework. Furthermore, two other arylgold Au15 nanoclusters with halogenated surfaces were controllably synthesized by substituting the arylating agent NaBPh4 with its benzene ring-halide derivatives. In addition, the change in the electronic structure from Au-SR to Au-aryl and the energetics of the arylation process from Au15-SR to Au15-Ph were elucidated computationally. Furthermore, the catalytic capability of the two Au15 nanoclusters with nuanced ligand differences was investigated in the electrochemical reduction of CO2, and the comparable reactivity of the two cluster-based nanocatalysts was theoretically rationalized. Our findings have cross-fertilized the fields of arylgold complexes and gold nanoclusters, pointing toward a new avenue of exploration for novel arylgold nanoclusters.

