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碱基诱导消除中的意外间接动力学。

Unexpected Indirect Dynamics in Base-Induced Elimination.

机构信息

Institut für Ionenphysik und Angewandte Physik , Universität Innsbruck , Technikerstrasse 25 , 6020 Innsbruck , Austria.

Key Laboratory of Synthetic and Natural Functional Molecule Chemistry, Ministry of Education, College of Chemistry and Materials Science , Northwest Universtiy , 710127 Xian , People's Republic of China.

出版信息

J Am Chem Soc. 2019 Dec 26;141(51):20300-20308. doi: 10.1021/jacs.9b10575. Epub 2019 Dec 12.

Abstract

Base-induced elimination (E2) and bimolecular nucleophilic substitution (S2) are two of the most versatile reactions that are important in preparative organic chemistry. These stereospecific reactions are often found in direct competition with each other. Elimination can proceed via two distinct transition states, referred to as anti and syn, of which anti is commonly energetically favored. To investigate the intrinsic dynamics of base-induced elimination, reactions under single-collision conditions are required. Here, we present reactive scattering results on the prototype reaction of the fluoride anion with -butyl halides. The observed mechanistic fingerprints are associated with the E2 reaction, because steric hindrance at the α-carbon suppresses the S2 reaction [Carrascosa, E.; Meyer, J.; Zhang, J.; Stei, M.; Michaelsen, T.; Hase, W. L.; Yang, L.; Wester, R. , , 25]. The reaction coordinate shows energetically submerged transition states, with anti favored over syn, and we found a very shallow prereaction well for anti. We predominantly found indirect dynamics for a range of collision energies, which can be separated into three remarkably different mechanisms. At low collision energies, the first is a large impact parameter indirect mechanism which leads to a forward-backward symmetric scattering signature. The second mechanism is attributed to low-impact parameter reactions with a near-statistical partitioning of the total available energy. The majority of events are associated with widespread isotropic scattering. Unexpectedly, the product ion kinetic energy distributions are independent of collision energy. We associate this with dynamic trapping in a prereaction well supported by a large centrifugal potential. These measured fingerprints support that atomistic reaction dynamics cannot be predicted based on stationary arguments alone.

摘要

基引发消除(E2)和双分子亲核取代(S2)是两种在有机合成中非常重要且用途广泛的反应。这些立体专一性反应通常彼此直接竞争。消除可以通过两种不同的过渡态进行,分别称为反式和顺式,其中反式通常在能量上更为有利。为了研究碱诱导消除的内在动力学,需要在单次碰撞条件下进行反应。在这里,我们提出了氟阴离子与正丁基卤化物反应的原型反应的反应散射结果。观察到的机械指纹与 E2 反应有关,因为α-碳原子上的空间位阻抑制了 S2 反应[Carrascosa,E.;Meyer,J.;Zhang,J.;Stei,M.;Michaelsen,T.;Hase,W. L.;Yang,L.;Wester,R. , , 25]。反应坐标显示出能量上被淹没的过渡态,反式比顺式更有利,我们发现反式的预反应势阱非常浅。我们主要发现了一系列不同碰撞能量下的间接动力学,可以将其分为三种截然不同的机制。在低碰撞能下,第一种是导致前后对称散射特征的大碰撞参数间接机制。第二种机制归因于低碰撞参数反应,其中总可用能量的分配接近统计分布。大多数事件与广泛的各向同性散射有关。出乎意料的是,产物离子动能分布与碰撞能无关。我们将其归因于在由大离心势能支持的预反应势阱中的动态捕获。这些测量的指纹表明,原子反应动力学不能仅基于静态论点进行预测。

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