Unveiling the mechanism: an alkyne-protected Au6Cu6 catalyst for accelerated CuAAC reaction of internal alkynes
Abstract
The classical Fokin mechanism for CuAAC catalysis, which involves a deprotonation step, is inherently restricted to terminal alkynes. Recently, a bimetallic Au4Cu4 cluster enabled π-activation of phenylacetylene (HC≡CPh) via Au-Cu synergy, overcoming this limitation. In this study, we designed and synthesized three types of carbon nanotube-supported atomically precise nanoclusters-Au6Cu6PA12(PA=Phenylacetylene), Au6Cu6PET12 (PET=phenethylsulfate), and Au6Cu6MBT12(MBT=3-methylbenzenethiol) - as heterogeneous catalysts for the CuAAC reaction of internal alkynes without requiring alkyne deprotonation. Among these, the alkyne-protected Au6Cu6(PA)12 exhibited exceptional performance, with a turnover number (TON) of 1,133.9 that surpasses all reported catalytic systems for this reaction. DFT calculations further confirmed a non-dehydrogenation mechanism. By comparing five possible reaction pathways, we elucidated the origin of the superior activity of Au6Cu6(PA)12 over other systems, including the previously reported Au4Cu4 cluster. This work provides important insights for the rational design of efficient catalysts for internal alkyne cycloaddition reactions.
Keywords
AuCu nanoclusters, Click Reactions of Internal Alkenes, cooperative mechanism, structure-activity relationships
Cite This Article
Li L, Gao JH, Ni X, Wang J, Li T, Zhu K, Hu SX, Sheng H, Zhu M. Unveiling the mechanism: an alkyne-protected Au6Cu6 catalyst for accelerated CuAAC reaction of internal alkynes. Chem Synth 2026;6:[Accept]. http://dx.doi.org/10.20517/cs.2025.100
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