首页> 外文期刊>Journal of the American Chemical Society >Enzyme-like Specificity In Zeolites: A Unique Site Position Inrnmordenite For Selective Carbonylation Of Methanol Andrndimethyl Ether With Co
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Enzyme-like Specificity In Zeolites: A Unique Site Position Inrnmordenite For Selective Carbonylation Of Methanol Andrndimethyl Ether With Co

机译:沸石中的类酶特异性:独特的位点萤光沸石,用于甲醇和二甲基醚与钴的选择性羰基化

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The mechanism of methanol carbonylation at different positions of zeolite MOR is investigated by quantum-chemical methods in order to discover which are the active sites that can selectively catalyze the desired reaction. It is shown that when methanol carbonylation competes with hydrocarbon formation, the first reaction occurs preferentially within 8MR channels. However, the unique selectivity for the carbonylation of methanol and dimethyl ether in mordenite is not only due to the size of the 8MR channel: neither process occurs equally at the two T3-O31 and T3-O33 positions. We show that only the T3-O33 positions are selective and that this selectivity is due to the unusual orientation of the methoxy group in relation to the 8MR channel (parallel to the cylinder axis). Only in this situation does the transition state for the attack of CO fit perfectly in the 8MR channel, while the reaction with methanol or DME is sterically impeded. This result explains why T3-O31, while also located in the 8MR channel of mordenite, is not as selective as the T3-O33 position and why ferrierite, although it contains 8MR channels, is less selective than mordenite. The competing effect of water is explained at the molecular level, and the molecular microkinetic reaction model has been established.
机译:通过量子化学方法研究了在MOR分子不同位置上甲醇羰基化的机理,以发现哪些是可以选择性催化所需反应的活性位点。结果表明,当甲醇羰基化与烃形成竞争时,第一反应优先发生在8MR通道内。但是,丝光沸石中甲醇和二甲醚羰基化的独特选择性不仅是由于8MR通道的大小:两个T3-O31和T3-O33位置均不会发生相同的过程。我们显示只有T3-O33位置是选择性的,并且该选择性是由于甲氧基相对于8MR通道(平行于圆柱轴)的不寻常取向而引起的。仅在这种情况下,CO攻击的过渡态才能完美地适合8MR通道,而与甲醇或DME的反应在空间上受阻。该结果解释了为何虽然T3-O31也位于丝光沸石的8MR通道中,却不像T3-O33位置那样具有选择性,以及为何镁橄榄石尽管包含8MR通道,但其选择性却不如丝光沸石。在分子水平上解释了水的竞争作用,并建立了分子微动力学反应模型。

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