<p>The Lewis acid-catalyzed tittle reaction of 1,3-dicycloalkenlidine ketones is recognized as so far the shortest and most effective 1-step method for construction of angular tricyclic scaffolds, which are extensively found in bioactive terpenoids. Here, a further kinetic study of this reaction with 30 reaction examples is carried out using in situ IR technology and DFT calculation. That enables the creation of well-fitted linear relationships of ln<i>k</i>/(Δ<i>G</i><sub>1</sub><sup>‡</sup>/T), Δ<i>G</i><sub>1</sub><sup>‡</sup>/Δ<i>G</i><sub>2</sub>, ln(<i>k/k</i><sub>H</sub>)<i>/</i>σ<sub>p</sub>, reflecting the structure′s effect on reactivity/selectivity, and validating the reaction mechanism. Particularly highlighted is that substituents C1-R<sup>1</sup>/C3-R<sup>2</sup> activate this reaction in the order: alkyl ≈ aryl &gt;&gt; aryl <i>S</i>-, halogen, alkyl <i>O</i>-, and alkyl <i>N</i>-. While electron-withdrawing R<sup>1</sup>/R<sup>2</sup> will inactivate this reaction. When R<sup>1</sup> = R<sup>2</sup> = Me and <i>m</i> = 4, the reactivity of <i>n-</i>membered substrates follow the order of ring′s size: 3 &gt; 4 &gt; 7 &gt; 6 &gt; 5. Then, DFT calculations combined with machine learning algorithms establish a prediction model for first cycloexpansion (i e. regioselectivity). Electron-donating R<sup>1</sup>/R<sup>2</sup> can direct preferentially the first cycloexpansion of its near ring in the order: alkyl &gt; aryl &gt; halogen ≈ alkyl <i>O</i>- &gt; alkyl <i>N</i>- &gt; aryl <i>S</i>-, which can be fitted into the relationship as ΔΔ<i>G</i>/(ΔΔ<i>G</i>-R<sup>1</sup>, ΔΔ<i>G</i>-R<sup>2</sup>, ΔΔ<i>G</i>-<i>m</i>, ΔΔ<i>G</i>-<i>n</i>) or ΔΔ<i>G</i>/(<i>m</i>-rse, <i>m</i>-ra, <i>n</i>-rse, <i>n</i>-ra, R<sup>1</sup>-σ<sub>p</sub>, R<sup>2</sup>-σ<sub>p</sub>). When R<sup>1</sup> and R<sup>2</sup> show the similar electronic effect, the first cycloexpansion of <i>m/n</i> takes place in the order of ring′s size: 4 &gt; 5 &gt; 6, 7, 8 &gt; 3. Six examples are successfully validated by model prediction and then experiment. In this work, structure-reactivity relationship and regioselectivity predicting model are established.</p>

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In-depth insight into structure-reactivity/regioselectivity relationship of Lewis acid catalyzed cascade 4πe-cyclization/dicycloexpansion reaction

  • Ka Lu,
  • Pan-Pan Zhou,
  • Yong-Qiang Tu,
  • Fu-Min Zhang,
  • Xiao-Ming Zhang,
  • Kai Li,
  • Kun Fang,
  • Yun-Peng Wang,
  • Zi-Hao Li,
  • Jia-Qi Li

摘要

The Lewis acid-catalyzed tittle reaction of 1,3-dicycloalkenlidine ketones is recognized as so far the shortest and most effective 1-step method for construction of angular tricyclic scaffolds, which are extensively found in bioactive terpenoids. Here, a further kinetic study of this reaction with 30 reaction examples is carried out using in situ IR technology and DFT calculation. That enables the creation of well-fitted linear relationships of lnk/(ΔG1/T), ΔG1G2, ln(k/kH)/σp, reflecting the structure′s effect on reactivity/selectivity, and validating the reaction mechanism. Particularly highlighted is that substituents C1-R1/C3-R2 activate this reaction in the order: alkyl ≈ aryl >> aryl S-, halogen, alkyl O-, and alkyl N-. While electron-withdrawing R1/R2 will inactivate this reaction. When R1 = R2 = Me and m = 4, the reactivity of n-membered substrates follow the order of ring′s size: 3 > 4 > 7 > 6 > 5. Then, DFT calculations combined with machine learning algorithms establish a prediction model for first cycloexpansion (i e. regioselectivity). Electron-donating R1/R2 can direct preferentially the first cycloexpansion of its near ring in the order: alkyl > aryl > halogen ≈ alkyl O- > alkyl N- > aryl S-, which can be fitted into the relationship as ΔΔG/(ΔΔG-R1, ΔΔG-R2, ΔΔG-m, ΔΔG-n) or ΔΔG/(m-rse, m-ra, n-rse, n-ra, R1p, R2p). When R1 and R2 show the similar electronic effect, the first cycloexpansion of m/n takes place in the order of ring′s size: 4 > 5 > 6, 7, 8 > 3. Six examples are successfully validated by model prediction and then experiment. In this work, structure-reactivity relationship and regioselectivity predicting model are established.