论文标题
用于构象控制反应研究模型系统的量子化学辅助识别,合成和实验验证:在气相中的2,3-二溴豆1,3-二烯的构象异构体的分离
Quantum-chemistry-aided identification, synthesis and experimental validation of model systems for conformationally controlled reaction studies: Separation of the conformers of 2,3-dibromobuta-1,3-diene in the gas phase
论文作者
论文摘要
Diels-Alder Cycloadition,其中二烯与二烯蛋白反应形成环状化合物,是有机合成中最重要的工具之一。对量子水平的机械细节进行精确理解需要新的实验和理论方法。在这里,我们提出了一种实验方法,该方法将分子束中的不同二烯构象体分开,以此作为研究其单个环加成反应动力学动力学和动力学在气相中的单个环加成反应动力学的先决条件。一百多个二氧化碳的基于低和高级量子化学的筛选,鉴定出2,3-二溴丁烷(DBB)是通过静电偏转有效分离其Gauche和S-Trans构型的最佳候选者。开发了一种DBB的制备方法,该方法得以生成该化合物的致密分子束。通过成功分离分子束中构象异构体的分离,对DBB分子特性的理论预测进行了验证。观察到了飞秒激光脉冲电离上两个构象异构体的光构离子产量的明显差异,指向电离dbb的明显构象异构特异性片段化动力学。我们的工作为在气相中受控条件下的环加成反应的机理模型进行了严格检查为阶段奠定了基础。
The Diels-Alder cycloaddition, in which a diene reacts with a dienophile to form a cyclic compound, counts among the most important tools in organic synthesis. Achieving a precise understanding of its mechanistic details on the quantum level requires new experimental and theoretical methods. Here, we present an experimental approach that separates different diene conformers in a molecular beam as a prerequisite for the investigation of their individual cycloaddition reaction kinetics and dynamics under single-collision conditions in the gas phase. A low- and high-level quantum-chemistry-based screening of more than one hundred dienes identified 2,3-dibromobutadiene (DBB) as an optimal candidate for efficient separation of its gauche and s-trans conformers by electrostatic deflection. A preparation method for DBB was developed which enabled the generation of dense molecular beams of this compound. The theoretical predictions of the molecular properties of DBB were validated by the successful separation of the conformers in the molecular beam. A marked difference in photofragment ion yields of the two conformers upon femtosecond-laser pulse ionization was observed, pointing at a pronounced conformer-specific fragmentation dynamics of ionized DBB. Our work sets the stage for a rigorous examination of mechanistic models of cycloaddition reactions under controlled conditions in the gas phase.