Shicheng Ren, Zeyu Ren, Song Lin, Peican Chen, Anxiang Guan, Maorui Wang, Liya Zhou, Haitao Tang, Ying‐Ming Pan
Borylative allyl–allyl coupling reactions of allenes are an efficient strategy for constructing 1,5-diene skeletons. Nevertheless, this reaction poses challenges in achieving precise chemical selectivity and stereochemical control. We designed an air-stable copper(I) single-atom site catalyst (SASC), Cu@POL-bpy, with high regioselectivity for borylative allyl–allyl coupling of aryl-allenes. This breakthrough resulted from thorough investigations into structure–performance relationships, highlighting the importance of the hierarchical porosity and metal–support interactions of the catalyst. The catalytic system had a surface area of 961 m 2 /g and attained a turnover number (TON) of 2607.4, representing almost a 150-fold improvement over previous catalytic systems. This study highlights the promise of SASCs in organic synthesis and provides valuable insights and tools for advancing synthetic chemistry.