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Direct Comparison of Solution and Gas-Phase Reactions of the Three Distonic Isomers of the Pyridine Radical Cation with Methanol

机译:吡啶自由基阳离子与甲醇的三种distonic异构体的溶液和气相反应的直接比较

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摘要

To directly compare the reactivity of positively charged carbon-centered aromatic σ-radicals toward methanol in solution and in the gas phase, the 2-, 3-, and 4- [ dehydropyridinium cations (distonic isomers of the pyridine radical cation) were generated by ultraviolet photolysis of the corresponding iodo precursors in a mixture of water and methanol at varying pH. The reaction mixtures were analyzed by using liquid chromatography/mass spectrometry. Hydrogen atom abstraction was the only reaction observed for the 3- and 4-dehydropyridinium cations (and pyridines) in solution. This also was the major reaction observed earlier in the gas phase. Depending on the pH, the hydrogen atom can be abstracted from different molecules (I.e., methanol or water) and from different sites (in methanol) by the 3- and 4-dehydropyridinium cations/ pyridines in solution. In the pH range 1-4, the methyl group of methanol is the main hydrogen atom donor site for both 3- and 4-dehydropyridinium cations (just like in the gas phase). At higher pH, the hydroxyl groups of water and methanol also act as hydrogen atom donors. This finding is rationalized by a greater abundance of the unprotonated radicals that preferentially abstract hydrogen atoms from the polar hydroxyl groups. The percentage yield of hydrogen atom abstraction by these radicals was found to increase with lowering the pH in the pH range 1.0-3.2. This pH effect is rationalized by polar effects: the lower the pH, the greater the fraction of protonated (more polar) radicals in the solution. This finding is consistent with previous results obtained in the gas phase and suggests that gas-phase studies can be used to predict solution reactivity, but only as long as the same reactive species is studied in both experiments. This was found not to be the case for the 2-iodopyridinium cation. Photolysis of this precursor in solution resulted in the formation of two major addition products, 2-hydroxy- and 2-methoxypyridinium cations, in addition to the hydrogen atom abstraction product. These addition products were not observed in the earlier gas-phase studies on 2-dehydropyridinium cation. Their observation in solution is explained by the formation of another reactive intermediate, the 2-pyridyl cation, upon photolysis of 2-iodopyridinium cation (and 2-iodopyridine). The same intermediate was observed in the gas phase but it was removed before examining the reactions of the desired radical, 2-dehydropyridinium cation (which cannot be done in solution).
机译:为了直接比较带正电的碳中心芳香族σ自由基对溶液和气相中甲醇的反应性,通过以下方法生成了2-,3-和4- [脱氢吡啶鎓阳离子(吡啶自由基阳离子的二元异构体)在不同pH值的水和甲醇的混合物中对相应的碘前体进行紫外线光解。通过使用液相色谱/质谱法分析反应混合物。对于溶液中的3-和4-脱氢吡啶鎓阳离子(和吡啶),仅观察到氢原子反应。这也是早期在气相中观察到的主要反应。取决于pH,可以通过溶液中的3-和4-脱氢吡啶鎓阳离子/吡啶从不同的分子(即,甲醇或水)和从不同的位置(在甲醇中)提取氢原子。在1-4的pH范围内,甲醇的甲基是3-和4-脱氢吡啶鎓阳离子的主要氢原子供体位点(就像在气相中一样)。在较高的pH下,水和甲醇的羟基也充当氢原子供体。大量发现的非质子化自由基使该发现合理化,这些自由基优先从极性羟基中提取氢原子。发现在1.0-3.2的pH范围内,随着pH的降低,被这些自由基夺取氢原子的百分率增加。这种pH效应可以通过极性效应得到合理化:pH越低,溶液中质子化(极性越多)自由基的比例就越大。这一发现与先前在气相中获得的结果相符,并且表明气相研究可用于预测溶液的反应性,但前提是在两个实验中都研究相同的反应物种。发现2-碘吡啶鎓阳离子不是这种情况。该前体在溶液中的光解除形成氢原子提取产物外,还导致形成两种主要的加成产物:2-羟基-和2-甲氧基吡啶鎓阳离子。在早期的2-脱氢吡啶鎓阳离子气相研究中未观察到这些加成产物。他们在溶液中的观察结果是通过在2-碘吡啶鎓阳离子(和2-碘吡啶)光解后形成另一种反应性中间体2-吡啶阳离子来解释的。在气相中观察到相同的中间体,但是在检查所需的自由基2-脱氢吡啶鎓阳离子的反应(无法在溶液中完成)之前将其除去。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2012年第4期|p.2085-2093|共9页
  • 作者单位

    Department of Chemistry, Purdue University, West Lafayette, Indiana 47907, United States;

    Department of Chemistry, Purdue University, West Lafayette, Indiana 47907, United States;

    Department of Chemistry, Purdue University, West Lafayette, Indiana 47907, United States;

    Department of Chemistry, Purdue University, West Lafayette, Indiana 47907, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-18 03:13:22

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