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理论阐明取代基和应变效应对 1,2,4,5-四嗪 Diels-Alder 反应速率的影响的起源。

Theoretical elucidation of the origins of substituent and strain effects on the rates of Diels-Alder reactions of 1,2,4,5-tetrazines.

机构信息

Department of Chemistry and Biochemistry, University of California , Los Angeles, California 90095, United States.

出版信息

J Am Chem Soc. 2014 Aug 13;136(32):11483-93. doi: 10.1021/ja505569a. Epub 2014 Jul 29.

Abstract

The Diels-Alder reactions of seven 1,2,4,5-tetrazines with unstrained and strained alkenes and alkynes were studied with quantum mechanical calculations (M06-2X density functional theory) and analyzed with the distortion/interaction model. The higher reactivities of alkenes compared to alkynes in the Diels-Alder reactions with tetrazines arise from the differences in both interaction and distortion energies. Alkenes have HOMO energies higher than those of alkynes and therefore stronger interaction energies in inverse-electron-demand Diels-Alder reactions with tetrazines. We have also found that the energies to distort alkenes into the Diels-Alder transition-state geometries are smaller than for alkynes in these reactions. The strained dienophiles, trans-cyclooctene and cyclooctyne, are much more reactive than unstrained trans-2-butene and 2-butyne, because they are predistorted toward the Diels-Alder transition structures. The reactivities of substituted tetrazines correlate with the electron-withdrawing abilities of the substituents. Electron-withdrawing groups lower the LUMO+1 of tetrazines, resulting in stronger interactions with the HOMO of dienophiles. Moreover, electron-withdrawing substituents destabilize the tetrazines, and this leads to smaller distortion energies in the Diels-Alder transition states.

摘要

七种 1,2,4,5-四嗪与非环和环烯烃及炔烃的 Diels-Alder 反应通过量子力学计算(M06-2X 密度泛函理论)进行了研究,并通过变形/相互作用模型进行了分析。与四嗪的 Diels-Alder 反应中,烯烃的反应活性高于炔烃,这是由于相互作用能和变形能的差异所致。烯烃的 HOMO 能量高于炔烃,因此在与四嗪的逆电子需求 Diels-Alder 反应中具有更强的相互作用能。我们还发现,在这些反应中,烯烃变形为 Diels-Alder 过渡态几何形状所需的能量比炔烃小。应变双烯亲电试剂,反式环辛烯和环辛炔,比非应变的反式 2-丁烯和 2-丁炔反应性更强,因为它们预先向 Diels-Alder 过渡结构变形。取代四嗪的反应活性与取代基的吸电子能力相关。吸电子基团降低四嗪的 LUMO+1,导致与亲双烯体 HOMO 的相互作用更强。此外,吸电子取代基使四嗪不稳定,这导致 Diels-Alder 过渡态中的变形能更小。

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