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Shape-Selective Enantioselective Hydrogenation on Pt Nanoparticles

机译:Pt纳米颗粒上的形状选择对映选择性氢化

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摘要

The structure sensitivity of enantioselective hydrogenations on chirally modified metals was investigated using Pt nanoparticles of different shapes. All three samples had an average particle size of 10 nm, but the fraction of dominantly cubic, cubooctahedral, and octahedral particles varied with decreasing {100} and increasing {111} faces in the same order. In the absence of chiral modifier the hydrogenation of ethyl pyruvate was independent of the shape of the Pt nanoparticles; variation of the specific reaction rates did not exceed the experimental error on all self-prepared catalysts and on a commercial Pt/Al_2O_3 used as reference. Addition of cinchonidine or quinine induced a significant rate enhancement by a factor of 4-15, and the rate was always higher with quinine. Also, 72-92% ees were achieved, and the reaction was shape selective: both the rate and the ee increased with increasing Pt{111}/Pt{100} ratio. A similar correlation in the hydrogenation of ketopantolactone confirmed that decarbonylation or aldol-type side reactions of ethyl pyruvate were not the reason for structure sensitivity. A combined catalytic and theoretical study revealed that the probable origin of the particle shape dependency of enantioselective hydrogenation is the adsorption behavior of the cinchona alkaloid. DFT studies of cinchonidine interacting with Pt(100) and Pt(111) terraces indicated a remarkably stronger interaction on the former crystallographic face by ca. 155 kJ/mol. The higher adsorption strength on Pt(100) was corroborated experimentally by the faster hydrogenation of the homoaromatic ring of the alkaloid, which fragment interacts the strongest with Pt during its adsorption. Thus, an ideal catalyst for the hydrogenation of activated ketones contains dominantly Pt{111} terraces, which crystallographic face is more active and affords higher enantioselectivity, combined with the higher stability of the modifier.
机译:使用不同形状的Pt纳米颗粒,研究了手性改性金属上对映选择性氢化的结构敏感性。这三个样品的平均粒径均为10 nm,但主要的立方,立方八面体和八面体颗粒的比例随着{100}面的减少和{111}面的增加以相同顺序变化。在不存在手性改性剂的情况下,丙酮酸乙酯的氢化与Pt纳米颗粒的形状无关。在所有自行制备的催化剂和用作参考的市售Pt / Al_2O_3上,比反应速率的变化均不超过实验误差。加入辛可尼定或奎宁可显着提高4-15倍的速率,奎宁的速率始终较高。而且,获得了72-92%的ee,并且反应是形状选择性的:速率和ee都随着Pt {111} / Pt {100}比率的增加而增加。酮戊内酯氢化中的类似相关性证实,丙酮酸乙酯的脱羰基或醛醇型副反应不是结构敏感性的原因。催化和理论相结合的研究表明,对映选择性氢化的颗粒形状依赖性的可能起源是金鸡纳生物碱的吸附行为。 DFT研究辛可尼定与Pt(100)和Pt(111)阶跃相互作用时,大约前者在前结晶面上的相互作用显着增强。 155 kJ /摩尔。通过生物碱的同芳环的更快氢化实验证实了对Pt(100)的更高吸附强度,该片段在吸附过程中与Pt相互作用最强。因此,用于活化的酮的氢化的理想催化剂主要包含Pt {111}梯阶,其晶面更活跃并且提供更高的对映选择性,同时具有更高的改性剂稳定性。

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  • 来源
    《Journal of the American Chemical Society》 |2009年第34期|12358-12367|共10页
  • 作者单位

    Department of Chemistry and Applied Biosciences, ETH Zuerich, Hoenggerberg, HCI, CH-8093, Zuerich, Switzerland;

    Department of Chemistry and Applied Biosciences, ETH Zuerich, Hoenggerberg, HCI, CH-8093, Zuerich, Switzerland;

    Department of Chemistry and Applied Biosciences, ETH Zuerich, Hoenggerberg, HCI, CH-8093, Zuerich, Switzerland;

    Department of Chemistry and Applied Biosciences, ETH Zuerich, Hoenggerberg, HCI, CH-8093, Zuerich, Switzerland;

  • 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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