Deciphering the Origin of Divergent Cycloisomerization Pathways in Gold(I)‐ and Silver(I)‐Catalyzed Reactions of 1,9‐Dien‐4‐yne Ester

Experimental studies have shown that gold(I)‐ and silver(I)‐catalyzed cycloisomerization of 1,9‐dien‐4‐yne esters affords distinct products. To elucidate the origin of this metal‐dependent selectivity, we performed a comprehensive density functional theory (DFT) investigation of the corresponding catalytic reactions. The calculated mechanisms reveal that both reactions involve a series of elementary steps associated with transformations between σ ‐ and π ‐coordinated metal intermediates. Comparative analysis shows that the divergent reactivity originates from intrinsic differences in the σ ‐ and π ‐coordination preferences of Au(I) and Ag(I). In particular, Au(I) exhibits a substantially stronger preference for σ ‐coordination relative to π ‐coordination than Ag(I), which alters the accessibility of key intermediates and transition states and ultimately directs the reactions toward different cycloisomerization products.

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Journal
Advanced Synthesis & Catalysis
Published
2026-09-29
DOI
https://doi.org/10.1002/adsc.70790
Primary Topic
Catalytic Alkyne Reactions
Type
article
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article

Deciphering the Origin of Divergent Cycloisomerization Pathways in Gold(I)‐ and Silver(I)‐Catalyzed Reactions of 1,9‐Dien‐4‐yne Ester

Zhenyang Lin, Wing Chun Chan, Yan Yu Cheng
Advanced Synthesis & Catalysis
Catalytic Alkyne Reactions
article

Deciphering the Origin of Divergent Cycloisomerization Pathways in Gold(I)‐ and Silver(I)‐Catalyzed Reactions of 1,9‐Dien‐4‐yne Ester

Zhenyang Lin, Wing Chun Chan, Yan Yu Cheng
article en

Abstract

Experimental studies have shown that gold(I)‐ and silver(I)‐catalyzed cycloisomerization of 1,9‐dien‐4‐yne esters affords distinct products. To elucidate the origin of this metal‐dependent selectivity, we performed a comprehensive density functional theory (DFT) investigation of the corresponding catalytic reactions. The calculated mechanisms reveal that both reactions involve a series of elementary steps associated with transformations between σ ‐ and π ‐coordinated metal intermediates. Comparative analysis shows that the divergent reactivity originates from intrinsic differences in the σ ‐ and π ‐coordination preferences of Au(I) and Ag(I). In particular, Au(I) exhibits a substantially stronger preference for σ ‐coordination relative to π ‐coordination than Ag(I), which alters the accessibility of key intermediates and transition states and ultimately directs the reactions toward different cycloisomerization products.

Advanced Synthesis & CatalysisVol. 368(20)
Hong Kong University of Science and Technology (HK)
Openalex Percentile: Top 22%
Catalytic Alkyne Reactions
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Deciphering the Origin of Divergent Cycloisomerization Pathways in Gold(I)‐ and Silver(I)‐Catalyzed Reactions of 1,9‐Dien‐4‐yne Ester — Zhenyang Lin, Wing Chun Chan, et al. · Advanced Synthesis & Catalysis (2026) | TGRS Research Map | TGRS