Kinetics of Catalytic Oxidation of Methane over Palladium Oxide by Wire Microcalorimetry

The kinetics of catalytic oxidation of methane (1–3% in air) over a palladium oxide (PdO) surface was investigated by wire microcalorimetry at atmospheric pressure and over the temperature range from 560 to 800 K. Wire surface structures and compositions were characterized by scanning electron micro...

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Veröffentlicht in:Journal of physical chemistry. C 2013-09, Vol.117 (38), p.19499-19507
Hauptverfasser: Xin, Yuxuan, Lieb, Sydnie, Wang, Hai, Law, Chung K
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container_title Journal of physical chemistry. C
container_volume 117
creator Xin, Yuxuan
Lieb, Sydnie
Wang, Hai
Law, Chung K
description The kinetics of catalytic oxidation of methane (1–3% in air) over a palladium oxide (PdO) surface was investigated by wire microcalorimetry at atmospheric pressure and over the temperature range from 560 to 800 K. Wire surface structures and compositions were characterized by scanning electron microscopy, X-ray photoelectron spectroscopy, and atom force microscopy. It was found that a porous PdO layer with a constant thickness of 1–2 μm was formed on the Pd wire after it was heat treated in nitrogen followed by air at elevated temperatures. Under the condition of the experiment, the reaction was found to be in the pseudo-first-order regime with respect to the methane concentration. The apparent rate constant of methane oxidation on PdO was determined to be k app(cm/s) = (3.2 ± 0.8) × 104e–(62.8±1.6)(kJ/mol)/RT for 600 < T < 740 K. Experimental data were analyzed using a gas–surface reaction model proposed previously. Analysis shows that the overall catalytic oxidation rate is governed by equilibrium adsorption/desorption of molecular oxygen, which determines the density of surface palladium sites and dissociative adsorption of methane on these sites. The equilibrium constant of O2 adsorption and desorption was estimated from literature values of desorption energy and molecular parameters of adsorbed oxygen atoms. The rate coefficient of methane dissociative adsorption was estimated to be k 16(cm/s) = (7.7 ± 1.6) × 104e–(59.9±1.2)(kJ/mol)/RT , derived from the equilibrium constant of oxygen adsorption over the same temperature range.
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The equilibrium constant of O2 adsorption and desorption was estimated from literature values of desorption energy and molecular parameters of adsorbed oxygen atoms. 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C</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Xin, Yuxuan</au><au>Lieb, Sydnie</au><au>Wang, Hai</au><au>Law, Chung K</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Kinetics of Catalytic Oxidation of Methane over Palladium Oxide by Wire Microcalorimetry</atitle><jtitle>Journal of physical chemistry. C</jtitle><addtitle>J. Phys. Chem. C</addtitle><date>2013-09-26</date><risdate>2013</risdate><volume>117</volume><issue>38</issue><spage>19499</spage><epage>19507</epage><pages>19499-19507</pages><issn>1932-7447</issn><eissn>1932-7455</eissn><abstract>The kinetics of catalytic oxidation of methane (1–3% in air) over a palladium oxide (PdO) surface was investigated by wire microcalorimetry at atmospheric pressure and over the temperature range from 560 to 800 K. Wire surface structures and compositions were characterized by scanning electron microscopy, X-ray photoelectron spectroscopy, and atom force microscopy. It was found that a porous PdO layer with a constant thickness of 1–2 μm was formed on the Pd wire after it was heat treated in nitrogen followed by air at elevated temperatures. Under the condition of the experiment, the reaction was found to be in the pseudo-first-order regime with respect to the methane concentration. The apparent rate constant of methane oxidation on PdO was determined to be k app(cm/s) = (3.2 ± 0.8) × 104e–(62.8±1.6)(kJ/mol)/RT for 600 &lt; T &lt; 740 K. Experimental data were analyzed using a gas–surface reaction model proposed previously. Analysis shows that the overall catalytic oxidation rate is governed by equilibrium adsorption/desorption of molecular oxygen, which determines the density of surface palladium sites and dissociative adsorption of methane on these sites. The equilibrium constant of O2 adsorption and desorption was estimated from literature values of desorption energy and molecular parameters of adsorbed oxygen atoms. The rate coefficient of methane dissociative adsorption was estimated to be k 16(cm/s) = (7.7 ± 1.6) × 104e–(59.9±1.2)(kJ/mol)/RT , derived from the equilibrium constant of oxygen adsorption over the same temperature range.</abstract><cop>Columbus, OH</cop><pub>American Chemical Society</pub><doi>10.1021/jp4058302</doi><tpages>9</tpages></addata></record>
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subjects Condensed matter: structure, mechanical and thermal properties
Electron, ion, and scanning probe microscopy
Exact sciences and technology
Physics
Solid surfaces and solid-solid interfaces
Structure and morphology
thickness
Structure of solids and liquids
crystallography
Surfaces and interfaces
thin films and whiskers (structure and nonelectronic properties)
Thin film structure and morphology
title Kinetics of Catalytic Oxidation of Methane over Palladium Oxide by Wire Microcalorimetry
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