VOLATILE ORGANIC-COMPOUNDS;
CATALYTIC-OXIDATION;
CO OXIDATION;
FORMALDEHYDE OXIDATION;
CARBON-MONOXIDE;
DEEP OXIDATION;
ATOM CATALYSTS;
ACTIVE-SITES;
NOBLE-METALS;
PERFORMANCE;
D O I:
10.1021/acs.est.6b04340
中图分类号:
X [环境科学、安全科学];
学科分类号:
08 ;
0830 ;
摘要:
The involvement of a great amount of active oxygen species is a crucial requirement for catalytic oxidation of benzene, because complete mineralization of one benzene molecule needs 15 oxygen atoms. Here, we disperse single silver adatoms on nanostructured hollandite manganese oxide (HMO) surfaces by using a thermal diffusion method. The single-atom silver catalyst (Ag-1/HMO) shows high catalytic activity in benzene oxidation, and 100% conversion is achieved at 220 degrees C at a high space velocity of 23 000 h(-1). The Mars-van Krevelen mechanism is valid in our case as the reaction orders for both benzene and O-2 approach one, according to reaction kinetics data. Data from H-2 temperature programmed reduction and O core-level X-ray photoelectron spectra (XPS) reveal that Ag-1/HMO possesses a great amount of active surface lattice oxygen available for benzene oxidation. Valence-band XPS and density functional theoretical calculations demonstrate that the single Ag adatoms have the upshifted 4d orbitals, thus facilitating the activation of gaseous oxygen. Therefore, the excellent activation abilities of Ag-1/HMO toward both surface lattice oxygen and gaseous oxygen account for its high catalytic activity in benzene oxidation. This work may assist with the rational design of efficient metal-oxide catalysts for the abatement of volatile organic compounds such as benzene.