首页> 外文期刊>Journal of the American Chemical Society >A Supramolecular View on the Cooperative Role of Bronsted and Lewis Acid Sites in Zeolites for Methanol Conversion
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A Supramolecular View on the Cooperative Role of Bronsted and Lewis Acid Sites in Zeolites for Methanol Conversion

机译:超分子观点的布朗斯台德和路易斯酸位点在沸石中用于甲醇转化的协同作用

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A systematic molecular level and spectroscopic investigation is presented to show the cooperative role of Bronsted acid and Lewis acid sites in zeolites for the conversion of methanol. Extra-framework alkaline-earth metal containing species and aluminum species decrease the number of Bronsted acid sites, as protonated metal clusters are formed. A combined experimental and theoretical effort shows that postsynthetically modified ZSM-5 zeolites, by incorporation of extra-framework alkaline-earth metals or by demetalation with dealuminating agents, contain both mononuclear [MOH](+) and double protonated binuclear metal clusters [M(mu-OH)(2)M](2+) (M = Mg, Ca, Sr, Ba, and HOAl). The metal in the extra-framework clusters has a Lewis acid character, which is confirmed experimentally and theoretically by IR spectra of adsorbed pyridine. The strength of the Lewis acid sites (Mg > Ca > Sr > Ba) was characterized by a blue shift of characteristic IR peaks, thus offering a tool to sample Lewis acidity experimentally. The incorporation of extra-framework Lewis acid sites has a substantial influence on the reactivity of propene and benzene methylations. Alkaline-earth Lewis acid sites yield increased benzene methylation barriers and destabilization of typical aromatic intermediates, whereas propene methylation routes are less affected. The effect on the catalytic function is especially induced by the double protonated binuclear species. Overall, the extra-framework metal clusters have a dual effect on the catalytic function. By reducing the number of Bronsted acid sites and suppressing typical catalytic reactions in which aromatics are involved, an optimal propene selectivity and increased lifetime for methanol conversion over zeolites is obtained. The combined experimental and theoretical approach gives a unique insight into the nature of the supramolecular zeolite catalyst for methanol conversion which can be meticulously tuned by subtle interplay of Bronsted and Lewis acid sites.
机译:进行了系统的分子水平和光谱研究,以显示布朗斯台德酸和路易斯酸位在沸石中对甲醇转化的协同作用。随着形成质子化的金属团簇,含骨架的碱土金属和铝物种减少了布朗斯台德酸位点的数量。实验和理论上的共同努力表明,通过并入骨架外的碱土金属或通过脱铝剂脱金属,合成后改性的ZSM-5沸石既包含单核[MOH](+)也包含双质子化双核金属簇[M( mu-OH)(2)M](2+)(M = Mg,Ca,Sr,Ba和HOAl)。骨架外簇中的金属具有路易斯酸特征,这通过吸附吡啶的红外光谱在实验和理论上得到证实。 Lewis酸位点的强度(Mg> Ca> Sr> Ba)的特征在于特征IR峰的蓝移,从而提供了通过实验对Lewis酸度进行采样的工具。骨架外路易斯酸位点的掺入对丙烯和苯甲基化的反应性具有实质性影响。碱土金属路易斯酸位点增加了苯甲基化的壁垒,并破坏了典型的芳族中间体的稳定性,而丙烯甲基化途径受到的影响较小。对催化功能的影响尤其是由双质子化双核物质诱导的。总体而言,骨架外金属簇对催化功能具有双重影响。通过减少布朗斯台德酸位点的数量并抑制涉及芳族化合物的典型催化反应,可以获得最佳的丙烯选择性,并延长了甲醇在沸石上的转化率。结合实验和理论方法,可以深入了解用于甲醇转化的超分子沸石催化剂的性质,可以通过布朗斯台德和路易斯酸位点之间的微妙相互作用来精心调节。

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