Pokochueva Ekaterina V, Burueva Dudari B, Kovtunova Larisa M, Bukhtiyarov Andrey V, Gladky Alexei Yu, Kovtunov Kirill V, Koptyug Igor V, Bukhtiyarov Valerii I
Laboratory of Magnetic Resonance Microimaging, International Tomography Center SB RAS, 3A Institutskaya St., 630090 Novosibirsk, Russia.
Boreskov Institute of Catalysis SB RAS, 5 Acad. Lavrentiev Pr., 630090 Novosibirsk, Russia.
Faraday Discuss. 2021 May 1;229:161-175. doi: 10.1039/c9fd00138g. Epub 2021 Mar 15.
The selectivity of product formation is strongly correlated with the nature of the catalyst active centers. Therefore, the selective synthesis of active sites with certain structure is a big challenge in modern catalysis. Here synthetic procedures are adopted for the formation of 1% Rh/TiO catalysts with different properties. It is shown that the nature of the precursor used for catalyst preparation is important, and that the use of a solution of rhodium acetate instead of rhodium nitrate leads to the selective formation of butenes during 1,3-butadiene hydrogenation. The use of parahydrogen in the reaction results in the enhancement of NMR signals via parahydrogen-induced polarization (PHIP) for all synthesized catalysts, and this signal enhancement increases with increasing catalyst calcination temperature. This effect is explained by the decoration of rhodium nanoparticles with titania which restricts hydrogen mobility on the surface, leading to the highest reported to date selectivity toward the pairwise hydrogen addition route of 7% for supported metal catalysts.
产物形成的选择性与催化剂活性中心的性质密切相关。因此,合成具有特定结构的活性位点是现代催化领域的一大挑战。本文采用合成方法制备了具有不同性质的1%Rh/TiO催化剂。结果表明,用于催化剂制备的前驱体的性质很重要,使用醋酸铑溶液而非硝酸铑溶液可在1,3 - 丁二烯氢化过程中选择性地生成丁烯。反应中使用仲氢会通过仲氢诱导极化(PHIP)增强所有合成催化剂的NMR信号,且这种信号增强随着催化剂煅烧温度的升高而增加。这种效应可解释为二氧化钛对铑纳米颗粒的修饰限制了表面氢的迁移率,从而使负载型金属催化剂对成对氢加成路线的选择性达到了迄今为止报道的最高值7%。