DAMAGE DISTRIBUTION AND WAVE-GUIDE FORMATION IN CU IMPLANTED LINBO3
Br Shi, ZL Wang, Km Wang, Tb Xu, Pr Zhu
Abstract
Br Shi, ZL Wang, Km Wang, Tb Xu, Pr Zhu
Abstract
The influence of sodium and phosphorus on the oxidation state of vanadium and molybdenum species and on the redox process of a V-Mo-O catalyst was studied by X-ray photoelectron spectroscopy and thermal gravimetric analysis. Why the sodium doping increased activity and the phosphorus doping improved selectivity in the V-Mo-O catalyst is explained. The sodium ions in the V-Mo-O catalyst seem to decrease the dissociation energy of adsorbed oxygen molecules and therefore make it favorable to the reoxidation of reduced molybdenum and vanadium species; the sodium ions in the V-Mo-O catalyst also weaken the M=O bonds, and therefore promote the vanadium species to be reduced. In other words, the sodium doping promotes the redox process of the V-Mo-O catalyst. The phosphorus ions in the V-Mo-O catalyst tend to keep the reduced vanadium species in a V4+ state and prevent the vanadium species from being significantly reduced, which may be an important reason for improving the selectivity of the V-Mo-O catalyst. In addition, both the sodium and the phosphorus doping in the V-Mo-O catalyst seem to be also helpful in diffusing lattice oxygen.
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The influence of sodium and phosphorus on the oxidation state of vanadium and molybdenum species and on the redox process of a V-Mo-O catalyst was studied by X-ray photoelectron spectroscopy and thermal gravimetric analysis. Why the sodium doping increased activity and the phosphorus doping improved selectivity in the V-Mo-O catalyst is explained. The sodium ions in the V-Mo-O catalyst seem to decrease the dissociation energy of adsorbed oxygen molecules and therefore make it favorable to the reoxidation of reduced molybdenum and vanadium species; the sodium ions in the V-Mo-O catalyst also weaken the M=O bonds, and therefore promote the vanadium species to be reduced. In other words, the sodium doping promotes the redox process of the V-Mo-O catalyst. The phosphorus ions in the V-Mo-O catalyst tend to keep the reduced vanadium species in a V4+ state and prevent the vanadium species from being significantly reduced, which may be an important reason for improving the selectivity of the V-Mo-O catalyst. In addition, both the sodium and the phosphorus doping in the V-Mo-O catalyst seem to be also helpful in diffusing lattice oxygen.
Key concepts: Vanadium, Catalysis, Molybdenum, Inorganic chemistry, Oxidation state, Chemistry, Sodium, Redox