Key Laboratory of Industrial Ecology and Environmental Engineering (MOE), School of Environmental Science and Technology, Dalian University of Technology, Dalian 116024, China.
Chem Asian J. 2013 May;8(5):934-8. doi: 10.1002/asia.201300088. Epub 2013 Mar 12.
Silanol groups on a silica surface affect the activity of immobilized catalysts because they can influence the hydrophilicity/hydrophobicity, matter transfer, or even transition state in a catalytic reaction. Previously, these silanol groups have usually been passivated by using surface-passivation reagents, such as alkoxysilanes, bis-silylamine reagents, chlorosilanes, etc., and surface passivation has typically been found in mesoporous-silicas-supported molecular catalysts and heteroatomic catalysts. However, this property has rarely been reported in mesoporous-silicas-supported metal-nanoparticle catalysts. Herein, we prepared an almost-superhydrophobic SBA-15-supported gold-nanoparticle catalyst by using surface passivation, in which the catalytic activity increased more than 14 times for the reduction of nitrobenzene compared with non-passivated SBA-15. In addition, this catalyst can selectively catalyze hydrophobic molecules under our experimental conditions, owing to its high (almost superhydrophobic) hydrophobic properties.
硅胶表面上的硅醇基团会影响固定化催化剂的活性,因为它们可以影响亲水性/疏水性、物质传递,甚至影响催化反应中的过渡态。以前,这些硅醇基团通常通过使用表面封端试剂(如烷氧基硅烷、双硅胺试剂、氯硅烷等)进行封端,并且表面封端通常在介孔硅-负载的分子催化剂和杂原子催化剂中发现。然而,这种性质在介孔硅-负载的金属纳米粒子催化剂中很少有报道。在此,我们通过表面封端制备了一种几乎超疏水的 SBA-15 负载金纳米粒子催化剂,与未封端的 SBA-15 相比,其对硝基苯的还原催化活性提高了 14 倍以上。此外,由于其高(几乎超疏水)疏水性,该催化剂可以在我们的实验条件下选择性地催化疏水分子。