化学
腈
脱氢
碳负离子
亲核细胞
试剂
酰胺
钾
氰化钾
有机化学
化学稳定性
组合化学
亲核加成
氰化物
硫代酰胺
氨
腈水合酶
催化作用
碱金属
羰基化
限制
金属
化学合成
烷基化
化学反应
苯胺
反应机理
嘧啶
量子化学
水解
药物化学
加成反应
作者
Peng Zhang,Shixiong Zhang,Yongli Cai,Li Rao,Junnian Wei,Jianping Guo,Ping Chen
摘要
Abstract The synthesis of organic nitriles remains heavily dependent on methodologies that often involve transition-metal catalysts or toxic cyanide reagents, limiting their sustainability. Here, we report a cyanide- and transition-metal-free chemical looping strategy that converts α-aryl alkenes and ammonia (NH3) into α-aryl nitriles using potassium amide (KNH2) as a reaction mediator. The reaction initially proceeds via the formation of α-aryl nitrile potassium salts. Subsequent treatment of the potassium salts with NH3 liberates nitriles and regenerates KNH2, thereby closing the chemical loop. Combined experimental characterizations and computational results reveal an initial nucleophilic amide-mediated anti-Markovnikov addition followed by a K+-facilitated dehydrogenation process. Two synergistic effects stabilize the key carbanionic intermediates: carbanion-phenyl conjugation and tridentate coordination of K+. Owing to stronger conjugation among the phenyl rings, the central carbanion, and the cyano group, the product carbanion is energetically more stable than the precursor carbanion, which constitutes the thermodynamic driving force for the overall dehydrogenation. This atom-economical approach redefines alkali metal amides as versatile reagents for sustainable nitrogen-atom transfer.
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