LAUSR.org creates dashboard-style pages of related content for over 1.5 million academic articles. Sign Up to like articles & get recommendations!

Optimization of Au0-Cu+ synergy in Au/MgCuCr2O4 catalysts for aerobic oxidation of ethanol to acetaldehyde

Photo from wikipedia

Abstract A ternary MgCuCr 2 O 4 spinel-supported gold nanoparticle catalyst is optimized toward high acetaldehyde productivity in gas-phase aerobic oxidation of ethanol. We investigate the structure–performance relationships of Au/MgCuCr… Click to show full abstract

Abstract A ternary MgCuCr 2 O 4 spinel-supported gold nanoparticle catalyst is optimized toward high acetaldehyde productivity in gas-phase aerobic oxidation of ethanol. We investigate the structure–performance relationships of Au/MgCuCr 2 O 4 catalysts by changing support and catalyst pretreatment to gain further insight into the Au 0 –Cu + synergy. Support calcination at 700 °C and catalyst prereduction result in the most active and stable ethanol oxidation catalyst. Extensive characterization shows this to be mainly due to the enrichment of Cu in the surface by H 2 - or ethanol-induced catalyst restructuring and the stabilization of surface Cu + species in well-crystallized spinel without reduction to Cu 0 , which leads to a higher surface Cu + fraction and enhanced Au 0 –Cu + interaction. Kinetic studies show that the apparent activation energies of prereduced catalysts are higher than those of preoxidized catalysts, suggesting that oxygen vacancy formation via water removal from Au–H and active oxygen species is a dominant rate-limiting step. Molecular O 2 is activated on defective Cu + sites at the AuNP/support interface to form peroxide-type O 2 − species, which serve as active sites for removing hydride from the gold surface and breaking the O-H bond of ethanol. The reaction rate increases with space velocity and reactant concentration, achieving a lower boundary estimate of space–time yield of up to 1245 g aldehyde g Au −1  h −1 at 250 °C with air as oxidant.

Keywords: surface; ethanol; aerobic oxidation; catalyst; oxidation ethanol

Journal Title: Journal of Catalysis
Year Published: 2017

Link to full text (if available)


Share on Social Media:                               Sign Up to like & get
recommendations!

Related content

More Information              News              Social Media              Video              Recommended



                Click one of the above tabs to view related content.