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Catalysis beyond frontier molecular orbitals: Selectivity in partial hydrogenation of multi-unsaturated hydrocarbons on metal catalysts

机译:超出前沿分子轨道的催化:在金属催化剂上的多饱和烃的部分氢化中的选择性

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The mechanistic understanding and control over transformations of multi-unsaturated hydrocarbons on transition metal surfaces remains one of the major challenges of hydrogenation catalysis. To reveal the microscopic origins of hydrogenation chemoselectivity, we performed a comprehensive theoretical investigation on the reactivity of two α,β-unsaturated carbonyls—isophorone and acrolein—on seven (111) metal surfaces: Pd, Pt, Rh, Ir, Cu, Ag, and Au. In doing so, we uncover a general mechanism that goes beyond the celebrated frontier molecular orbital theory, rationalizing the C═C bond activation in isophorone and acrolein as a result of significant surface-induced broadening of high-energy inner molecular orbitals. By extending our calculations to hydrogen-precovered surface and higher adsorbate surface coverage, we further confirm the validity of the “inner orbital broadening mechanism” under realistic catalytic conditions. The proposed mechanism is fully supported by our experimental reaction studies for isophorone and acrolein over Pd nanoparticles terminated with (111) facets. Although the position of the frontier molecular orbitals in these molecules, which are commonly considered to be responsible for chemical interactions, suggests preferential hydrogenation of the C═O double bond, experiments show that hydrogenation occurs at the C═C bond on Pd catalysts. The extent of broadening of inner molecular orbitals might be used as a guiding principle to predict the chemoselectivity for a wide class of catalytic reactions at metal surfaces.
机译:机械理解和控制过渡金属表面上多饱和烃的转化仍然是氢化催化的主要挑战之一。为了揭示氢化化学选择性的显微镜起源,我们对两种α,β-不饱和羰基 - 异佛酮和丙烯醛 - on七(111)金属表面的反应性进行了综合理论研究:Pd,Pt,Rh,Ir,Cu,Ag和au。在这样做时,我们发现超出了庆祝的前沿分子轨道理论的一般机制,由于高能量内分子轨道的显着表面诱导扩大,因此在异佛酮和丙烯醛中的C 1C键活化合理化。通过将我们的计算延伸到氢预过覆的表面和更高的吸附物表面覆盖,我们进一步证实了在现实催化条件下“内轨道扩大机制”的有效性。我们的实验反应研究通过我们的实验反应研究得到了对等佛酮的实验反应研究得到了全面的PD纳米粒子,其与(111)刻面终止。尽管前者分子轨道在这些分子中的位置通常被认为是对化学相互作用的负责,但表明,实验表明在Pd催化剂上的C 1 C键处发生氢化。扩大内部分子轨道的程度可用作引导原理,以预测金属表面在宽类催化反应中的化学选择性。

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