对映选择合成
催化作用
戒指(化学)
组合化学
化学
量子化学
分子
环应变
立体化学
立体异构
纳米技术
机制(生物学)
化学合成
材料科学
不对称氢化
有机化学
计算化学
作者
Debraj Ghorai,Saleha Khatun,William DeSnoo,Swagata Paul,Wang‐Yeuk Kong,Rupam Sahoo,Debu Ghorai,Dean J Tantillo,Santanu Panda
标识
DOI:10.1002/anie.202520548
摘要
Bicyclo[1.1.0]butanes (BCBs) & aza-bicyclo[1.1.0]butanes (ABBs) are characterized by significant ring strain, which allows diverse strain-release-driven efficient and atom-economical synthetic approaches to diverse valuable C(sp3)-rich novel skeletons, which are relevant to medicinal chemistry. Catalytic and asymmetric synthetic transformations are crucial in modern chemistry, enabling the efficient and selective production of chiral molecules with applications in pharmaceuticals, agrochemicals, and more. Over the last 2 years, a large number of catalytic and asymmetric strain-release-driven ring-opening transformations of BCBs have been reported to access C(sp3)-rich architecture. Despite significant advances using BCBs, catalytic asymmetric methodologies employing ABBs remain unknown. Herein, we report the enantioselective and catalytic strain release-driven ring-opening of ABB rings, which occurs via palladium-catalyzed asymmetric N-allylation followed by spirocyclization. Quantum chemical calculations shine light on the mechanism of this process.
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