化学
脱质子化
立体选择性
卡宾
亲核细胞
催化循环
催化作用
反应机理
立体化学
密度泛函理论
质子
计算化学
机制(生物学)
药物化学
反应性(心理学)
消除反应
双键
组合化学
反应中间体
立体异构
作者
Yan Li,Hecheng Hu,Zhiqiang Zhang
标识
DOI:10.1021/acs.joc.5c02717
摘要
Density functional theory computations were performed to study the reaction mechanism and origins of stereoselectivity of the reaction between β-bromoenals and a pyrazole-dione catalyzed by a chiral N-heterocyclic carbene (NHC). The catalytic cycle for producing spiropyrazolone-butenolide proceeds via six steps: (1) nucleophilic attack of the NHC on β-bromoenal; (2) 1,2-proton transfer; (3) C–C bond formation; (4) C–Br bond cleavage; (5) deprotonation accompanied by cyclization, and (6) elimination of the NHC. Different from previously proposed cyclization through C–O bond formation that determines the stereochemistry, our results demonstrate the C–C bond forming step is the stereoselectivity-determining step, leading preferentially to the S-configuration spiropyrazolone-butenolide. Additionally, the Brønsted acid (DBU·H + ) facilitates not only the proton transfer but also the NHC elimination. The calculated barriers for proton transfer without DBU·H + (45.1 kcal/mol) are significantly higher than that with DBU·H + (14.3 kcal/mol). Furthermore, the presence of DBU·H + also decreased the barrier for NHC elimination by 5.8 kcal/mol. NCI and AIM analyses were conducted to reveal the key factors controlling stereoselectivity. These findings provide valuable insights for understanding the mechanism and designing highly selective catalytic reactions in the future.
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