首页> 外文期刊>RSC Advances >Understanding the domino reaction between 1-diazopropan-2-one and 1,1-dinitroethylene. A molecular electron density theory study of the [3 + 2] cycloaddition reactions of diazoalkanes with electron-deficient ethylenes
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Understanding the domino reaction between 1-diazopropan-2-one and 1,1-dinitroethylene. A molecular electron density theory study of the [3 + 2] cycloaddition reactions of diazoalkanes with electron-deficient ethylenes

机译:了解1-重氮丙烷-2-酮与1,1-二硝基乙烯之间的多米诺反应。重氮烷与缺电子乙烯的[3 + 2]环加成反应的分子电子密度理论研究

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The reaction between 1-diazopropan-2-one and 1,1-dinitroethylene has been studied using the Molecular Electron Density Theory (MEDT) at the B3LYP/6-31G(d,p) computational level. This reaction comprises two domino processes initialised by a common [3 + 2] cycloaddition (32CA) reaction yielding a 1-pyrazoline, which participates in two competitive reaction channels. Along channel I, 1-pyrazoline firstly tautomerises to a 2-pyrazoline, which by a proton abstraction and spontaneous loss of nitrite anion yields the final pyrazole, while along channel II, the thermal extrusion of the nitrogen molecule in 1-pyrazoline gives a very reactive diradical intermediate which quickly yields the final gem-dinitrocyclopropane. Analysis of the conceptual DFT reactivity indices permits an explanation of the participation of 1-diazopropan-2-one in polar 32CA reactions. A Bonding Evolution Theory (BET) study along the more favourable regioisomeric reaction path associated to the 32CA reaction allows an explanation of its molecular mechanism. The present MEDT study sheds light on these complex domino reactions as well as on the participation of diazoalkanes in polar 32CA reactions towards strong electrophilic ethylenes via a two-stage one-step mechanism.
机译:使用分子电子密度理论(MEDT)在B3LYP / 6-31G(d,p)的计算水平上研究了1-重氮丙烷-2-酮与1,1-二硝基乙烯之间的反应。该反应包括两个由共同的[3 + 2]环加成(32CA)反应初始化的多米诺过程,产生1-吡唑啉,它参与两个竞争性反应通道。沿通道I,1-吡唑啉首先互变异构为2-吡唑啉,通过质子提取和亚硝酸根阴离子的自发流失产生最终的吡唑,而沿通道II,1-吡唑啉中氮分子的热挤出产生了非常重的吡唑。反应性双自由基中间体,可快速生成最终的 gem -二硝基环丙烷。分析概念性DFT反应性指数,可以解释1-重氮丙烷-2-酮参与极性32CA反应。沿着与32CA反应相关的更有利的区域异构反应路径进行的键合进化论(BET)研究可以解释其分子机理。目前的MEDT研究揭示了这些复杂的多米诺骨牌反应,以及重氮烷烃通过两步式一步机制参与极性32CA反应生成强亲电乙烯的过程。

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