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Confinement effects on chemical reactions—Toward an integrated rational catalyst design

机译:限制作用对化学反应的影响—进行综合合理的催化剂设计

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Most chemical reactions of practical interest are carried out in nano-structured materials, which can enhance reactions due to their large specific surface area, their interactions with the reacting mixture and confinement effects. An experimental investigation of the role of each possible catalytic effect is challenging, since experimental measurements reflect an integration over multiple effects. In this work, we present a review of our most recent research on some of the factors that can influence a chemical reaction in confinement through the study of several model systems. We first consider the influence of steric hindrance on the equilibrium and kinetics for the rotational isomerizations of several small hydrocarbons [E.E. Santiso, M. Buongiorno Nardelli, K.E. Gubbins, Proc. Natl. Acad. Sci. U.S.A., (2007), in press]. These examples illustrate how reaction rates can vary doubly exponentially with the dimensions of the confining material (the 'shape-catalytic' effect). As a second example, we consider the unimolecular decomposition of formaldehyde on graphitic carbon pores of various sizes [E.E. Santiso, A.M. George, K.E. Gubbins, M. Buongiorno Nardelli, J. Chem. Phys. 125 (2006) 084711]. These results illustrate the influence of electrostatic interactions with the supporting material on the reaction mechanism and equilibrium yield for reactions involving a charge transfer. As a final example, we consider the interaction of a water molecule with a defective carbon substrate as an example of a chemical interaction that can be enhanced through a shape-catalytic effect. We first show using ab initio calculations how a vacancy site on a graphene surface can induce the thermal splitting of water at relatively low temperatures [M.K. Kostov, E.E. Santiso, A.M. George, K.E. Gubbins, M. Buongiorno Nardelli, Phys. Rev. Lett. 95 (2005) 136105]. We then examine the dissociation on a vacancy site on a nanotube surface, which shows the shape-catalytic effect of the surface curvature. These results are a first step toward the design of catalytic materials that take advantage of different enhancing effects simultaneously.
机译:大多数具有实际意义的化学反应都是在纳米结构的材料中进行的,这是由于它们的大比表面积,它们与反应混合物的相互作用以及限制作用可以增强反应。对每种可能的催化作用的作用进行实验研究具有挑战性,因为实验测量结果反映了多种作用的综合。在这项工作中,我们将通过几个模型系统的研究,对我们最近的研究进行回顾,这些研究可能会限制化学反应的某些因素。我们首先考虑空间位阻对几种小烃的旋转异构化的平衡和动力学的影响[E.E. Santiso,M.Buongiorno Nardelli,K.E. Gubbins,过程Natl。学院科学美国,(2007年,印刷中)。这些例子说明了反应速率如何随约束材料的尺寸成倍增加(“形状催化”效应)。作为第二个例子,我们考虑了甲醛在各种尺寸的石墨碳孔上的单分子分解[E.E.桑蒂索(A.M.)乔治(KE) Gubbins,M.Buongiorno Nardelli,J.Chem。物理125(2006)084711]。这些结果说明了与载体材料的静电相互作用对涉及电荷转移的反应的反应机理和平衡收率的影响。作为最后一个例子,我们认为水分子与有缺陷的碳底物的相互作用是可以通过形状催化作用增强的化学相互作用的一个例子。我们首先使用从头算来显示石墨烯表面上的空位如何在相对较低的温度下引起水的热分解[M.K. Kostov,E.E. Santiso,A.M.乔治(KE) Gubbins,M。Buongiorno Nardelli,物理学。牧师95(2005)136105]。然后,我们检查了纳米管表面空位上的解离,这表明了表面曲率的形状催化作用。这些结果是迈向同时利用不同增强作用的催化材料设计的第一步。

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