Diastereoselective green synthesis of pyrrolo[1,2-a]quinolines via [3+2] cycloaddition reaction: insights from molecular electron density theory

IF 1.6 4区 化学 Q4 CHEMISTRY, PHYSICAL Theoretical Chemistry Accounts Pub Date : 2023-11-15 DOI:10.1007/s00214-023-03068-8
Haydar Mohammad-Salim, Asmita Mondal, Jesus Vicente de Julián-Ortiz, Nivedita Acharjee
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Abstract

The [3+2] cycloaddition (32CA) reaction between cyclic azomethine ylide (generated from N-phenacylquinolinium bromide) and N-arylmaleimide, leading to pyrrolo[1,2-a]quinolone, has been investigated using the Molecular Electron Density Theory at the B3LYP/6-311++G(d,p) computational level with D3 correction. This study focuses on the zwitter-ionic type 32CA reaction, highlighting its polar character with the electronic flux from the azomethine ylide to the alkene. The reaction proceeds with complete endo-stereoselectivity, and the activation parameters show minimal variations in different solvents, consistent with experimental observations. The activation energy is associated with the depopulation of the N2–C1 and C4–C5 bonding regions, formation of non-bonding electron density at N2 nitrogen and creation of pseudoradical centers at C3, C4 and C5. These findings suggest that the formation of new covalent bonds does not occur at the transition states, in line with the presence of non-covalent interactions at the interatomic bonding regions, as revealed by the topological analysis of the Quantum Theory of Atoms-in-Molecules.

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[3+2]环加成反应非对映选择性绿色合成吡咯[1,2-a]喹啉类化合物:来自分子电子密度理论的见解
利用分子电子密度理论,在B3LYP/6-311++G(d,p)计算水平上研究了环亚甲亚胺(N-phenacylquinolinium bromide)与n -芳基马来酰亚胺之间的[3+2]环加成反应(32CA),生成吡咯[1,2-a]喹诺酮。本研究以两性离子型32CA反应为研究对象,着重分析了其极性特征,以及从亚甲酰基到烯烃的电子通量。反应以完全的立体选择性进行,活化参数在不同溶剂中变化最小,与实验观察一致。活化能与N2 - c1和C4 - C5成键区域的失居、N2氮上非成键电子密度的形成以及C3、C4和C5上伪自由基中心的形成有关。这些发现表明,新的共价键的形成不会发生在过渡态,这与原子间键区存在非共价相互作用是一致的,正如原子分子量子理论的拓扑分析所揭示的那样。
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Theoretical Chemistry Accounts
Theoretical Chemistry Accounts 化学-物理化学
CiteScore
3.40
自引率
0.00%
发文量
74
审稿时长
3.8 months
期刊介绍: TCA publishes papers in all fields of theoretical chemistry, computational chemistry, and modeling. Fundamental studies as well as applications are included in the scope. In many cases, theorists and computational chemists have special concerns which reach either across the vertical borders of the special disciplines in chemistry or else across the horizontal borders of structure, spectra, synthesis, and dynamics. TCA is especially interested in papers that impact upon multiple chemical disciplines.
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