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The transfer of atomic oxygen from the surface of bismuth oxide onto molybdenum oxide through the gas phase, including the case when ozone was fed to the catalyst bed, is experimentally studied. It is found that the transfer of atomic oxygen through the gas phase only leads to the formation of the products of complete oxidation of propylene under conditions of heterogeneous propylene oxidation on the mixture of molybdenum and bismuth oxides. No new sites are formed on the surface of molybdenum oxide.  相似文献   
2.
Physics of the Solid State - The elastocaloric effect (ECE) is studied in samples of rapidly quenched ribbons of a Ti2NiCu alloy at a periodic action by a mechanical stress to 300 MPa at a...  相似文献   
3.
It is demonstrated by ESR measurements that O 2 (CO + O2) radical anions result from CO + O2 adsorption on the oxidized surface of CeO2. These radical anions are stabilized in the coordination sphere of Ce4+ cations located in isolated and associated anionic vacancies. This reaction shows an activation behavior determined by CO adsorption. The variation of O 2 (CO + O2) concentration with CO adsorption temperature suggests that surface carbonates and carboxylates participate in this reaction. In the (0.5– 10.0)%CeO2/ZrO2 system, O 2 forms on supported CeO2 and is stabilized on Ce4+ and Zr4+ cations. The stability of O 2 -Ce4+ complexes is lower on supported CeO2 than on unsupported CeO2, indicating a strong interaction between the cerium cations and the support.__________Translated from Kinetika i Kataliz, Vol. 46, No. 3, 2005, pp. 423–429.Original Russian Text Copyright © 2005 by Il’ichev, Kuli-zade, Korchak.  相似文献   
4.
The Mo(4%)/HZSM-5 catalyst for methane aromatization prepared by the impregnation of ammonium heptamolybdate followed by calcination at 700°C was studied. The formation of molybdenum ions in the oxidation state 5+ during catalysis and the presence of graphitized carbonaceous sediments on the surface of the catalyst were confirmed by diffuse reflectance infrared Fourier transform spectroscopy (DRIFT), X-ray photoelectron spectroscopy (XPS), and ESR spectroscopy.  相似文献   
5.
It is established by ESR that the adsorption of an NO + O2 mixture at 20°C on oxidized CeO2 (O2, T = 400–700°C) produces radical anions O 2 located both on isolated Ce4+ cations (O 2 (1)) and in associated anionic vacancies (O 2 (2)). These species differ in thermal stability. For example, O 2 (2) decomposes at 20°C, while O 2 (1) decomposes at 50°C. Only O 2 (1) species are observed at −196°C in ZrO2-supported CeO2. In the case of NO + O2 adsorption at 20°C, O 2 is stabilized on Zr4+ cations and decomposes at 270°C. Increasing the cerium oxide content of the ZrO2 surface from 0.5 to 10% only partially inhibits the formation of O 2 -Zr4+. The Zr4+ cation is shown to possess a higher Lewis acidity than the Ce4+ cation, and the ionic bond in O 2 -Zr4+ complexes is stronger than that in O 2 -Ce4+ complexes. ESR, temperature-programmed desorption, and IR spectroscopic data for various adsorption complexes of NO on CeO2 suggest that, in the key step of O 2 formation, free electrons appear on the surface owing to the conversion of adsorbed NO molecules into nitrito chelates on coordinately unsaturated ion pairs Ce4+-O 2 .__________Translated from Kinetika i Kataliz, Vol. 46, No. 3, 2005, pp. 414–422.Original Russian Text Copyright © 2005 by Il’ichev, Shibanova, Ukharskii, Kuli-zade, Korchak.  相似文献   
6.
This study was conducted with financial support from the KVSh (FIZMAT grant “Physico-Technical Problems of the Propagation of Disturbances in Continua, with Application to Problems in Power Engineering, Ecology, and Space Science”  相似文献   
7.
The effects of various factors on the formation of O2 radical anions in the adsorption of an NO + O2 or NO2 + O2 mixture on ZrO2 were studied. It was found that the thermal stability of the O2 species depends on the composition of the adsorbed gas. It was suggested that nitrogen oxide complexes on ZrO2 centers are responsible for the formation of O2 . These centers are formed upon the treatment of the oxide in a vacuum; however, they are different from both coordinatively unsaturated Zr4+ cations (NO adsorption centers at 77 K) and Zr4+–O–O–Zr4+ centers, at which O2 are formed because of the adsorption of H2 + O2. Based on the experimental data, the mechanism of O2 formation in the adsorption of an NO + O2 mixture is discussed.  相似文献   
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