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α-Hydroxyalkynyl-protected copper(I) acetelyenediide nanoclusters with anion-dependent photoluminescence
Jun-Fei Yao1, Pei Zhao2, Feng Hu3
1MOE Key Laboratory for Analytical Science of Food Safety and Biology, Fujian Provincial Key Laboratory of Analysis and Detection Technology for Food Safety, Fujian Provincial Key Laboratory of Electrochemical Energy Storage Materials, Fujian Provincial Key Laboratory of Advanced Inorganic Oxygenated Materials, College of Chemistry, Fuzhou University, Fuzhou 350108, P. R. China. qhw76@fzu.edu.cn.
Abstract:
Photoluminescent copper(I) acetelyenediide nanoclusters [(C2)Cu15(CCC(OH)R21)10(ClO4)2(CH3OH)3](ClO4) (Cu15, HCCC(OH)R21 = ethinylestradiol) and [(C2)Cu17(CCC(OH)R22)10(CF3CO2)5] (Cu17, HCCC(OH)R22 = ethisterone) are synthesised via comproportionation reactions of Cu(0) powder and Cu(II) salts in methanol. The employed α-hydroxyalkynes not only form multidentate α-hydroxyalkynyl ligands to stabilise the clusters from outside, but also release acetelyenediide (C22-) under ambient conditions in situ to template the formation of clusters from inside. Notably, although Cu15 and Cu17 share quite similar overall structures, the latter exhibits a photoluminescence quantum yield (PLQY) 15 times higher than the former in ethanol. A full and rigid protection formed by inner μ9-C22-, outer μ5-CCC(OH)R22 ligands, and bridging CF3CO2- anions in Cu17 is responsible for such significantly enhanced photoluminescence, as confirmed by theoretical calculations. This work demonstrates a mixed inner-outer and hetero-multidentate-ligand strategy for synergistically stabilising metal nanoclusters and generating intense photoluminescence, and α-hydroxyalkynes are highly applicable in achieving alkynyl-protected metal acetelyenediide clusters in a two birds, one stone manner.
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