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Neutral Transition Metal Hydrides as Acids in Hydrogen Bonding and Proton Transfer: Media Polarity and Specific Solvation Effects

机译:氢键和质子转移中作为酸的中性过渡金属氢化物:介质极性和特定溶剂化作用

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摘要

Structural, spectroscopic, and electronic features of weak hydrogen-bonded complexes of CpM(CO)3H (M = Mo (1a), W (1b)) hydrides with organic bases (phosphine oxides R3PO (R = n-C8H17, NMe2), amines NMe3, NEt3, and pyridine) are determined experimentally (variable temperature IR) and computationally (DFT/M05). The intermediacy of these complexes in reversible proton transfer is shown, and the thermodynamic parameters (ΔH°, ΔS°) of each reaction step are determined in hexane. Assignment of the product ion pair structure is made with the help of the frequency calculations. The solvent effects were studied experimentally using IR spectroscopy in CH2Cl2, THF, and CH3CN and computationally using conductor-like polarizable continuum model (CPCM) calculations. This complementary approach reveals the particular importance of specific solvation for the hydrogen-bond formation step. The strength of the hydrogen bond between hydrides 1 and the model bases is similar to that of the M−H···X hydrogen bond between 1 and THF (X = O) or CH3CN (X = N) or between CH2Cl2 and the same bases. The latter competitive weak interactions lower the activities of both the hydrides and the bases in the proton transfer reaction. In this way, these secondary effects shift the proton transfer equilibrium and lead to the counterintuitive hampering of proton transfer upon solvent change from hexane to moderately polar CH2Cl2 or THF.
机译:CpM(CO) 3 H(M = Mo(1a),W(1b))氢化物与有机碱(氧化膦R 3 PO(R = nC 8 H 17 ,NMe 2 ),胺NMe 3 ,NEt 3 和吡啶)是通过实验(可变温度IR)和计算方式(DFT / M05)确定的。显示了这些络合物在可逆质子转移中的中间体,并在己烷中确定了每个反应步骤的热力学参数(ΔH°,ΔS°)。借助频率计算来确定产物离子对结构。使用红外光谱在CH 2 Cl 2 ,THF和CH 3 CN中进行溶剂作用的实验研究,并使用类似导体的可极化连续体进行计算模型(CPCM)计算。这种互补的方法揭示了氢键形成步骤中特定溶剂化的特殊重要性。氢化物1和模型碱基之间的氢键强度类似于1和THF(X = O)或CH 3 CN(X = N)或在CH 2 Cl 2 与相同碱基之间。后者竞争性弱相互作用降低了质子转移反应中氢化物和碱的活性。这样,这些次要作用改变了质子转移平衡,并导致溶剂从己烷变为中等极性的CH 2 Cl 2 或THF时质子转移的反直观阻碍。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2010年第32期|p.11234-11246|共13页
  • 作者

    Vladislava A. Levina;

  • 作者单位

    A.N. Nesmeyanov Institute of Organoelement Compounds, Russian Academy of Sciences, Vavilov Street 28, 119991 Moscow, Russia, and Departament de Química, Universitat Autonoma de Barcelona, 08193 Bellaterra, Spain;

  • 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);
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  • 正文语种 eng
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