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Electric phase decomposition

Vapor Phase Decomposition of Aromatic Hydrocarbons by Electric Discharge... [Pg.323]

Abstract. After a brief introduction on zeolite constitution, structure and properties, the suitability of thermal analysis in characterizing the zeolite materials and in investigating their potential behavior in different application fields is analyzed. Kinetics and thermodynamics of water desorption, thermal stability, phase transformations, occluded phase decomposition and gas evolution, structure collapse and recrystallization, change in electrical properties, all in relation to thermal treatments, are the specific subjects reviewed. Use of thermal analysis in the evaluation of zeolite content in multicomponent mixtures and in the characterization of zeolite catalysts are the two additional main topics discussed. [Pg.112]

The pores of the silica template can be filled by carbon from a gas or a liquid phase. One may consider an insertion of pyrolytic carbon from the thermal decomposition of propylene or by an aqueous solution of sucrose, which after elimination of water requires a carbonization step at 900°C. The carbon infiltration is followed by the dissolution of silica by HF. The main attribute of template carbons is their well sized pores defined by the wall thickness of the silica matrix. Application of such highly ordered materials allows an exact screening of pores adapted for efficient charging of the electrical double layer. The electrochemical performance of capacitor electrodes prepared from the various template carbons have been determined and are tentatively correlated with their structural and microtextural characteristics. [Pg.31]

Schwab and co-workers (5-7) found a parallel between the electron concentration of different phases of certain alloys and the activation energies observed for the decomposition of formic acid into H2 and CO2, with these alloys as catalysts. Suhrmann and Sachtler (8,9,58) found a relation between the work function of gold and platinum and the energy of activation necessary for the decomposition of nitrous oxide on these metals. C. Wagner (10) found a relation between the electrical conductivity of semiconducting oxide catalysts and their activity in the decomposition of N2O. [Pg.305]

The capillary plasma reactor consists of a Pyrex glass body and mounted electrodes which are not in direct contact with the gas flow in order to eliminate the influence of the cathode and anode region on CO2 decomposition. Analysis of downscaling effects on the plasma chemistry and discharge characteristics showed that the carbon dioxide conversion rate is mainly determined by electron impact dissociation and gas-phase reverse reactions in the capillary microreactor. The extremely high CO2 conversion rate was attributed to an increased current density rather than to surface reactions or an increased electric field. [Pg.55]


See other pages where Electric phase decomposition is mentioned: [Pg.67]    [Pg.23]    [Pg.495]    [Pg.57]    [Pg.279]    [Pg.64]    [Pg.323]    [Pg.1148]    [Pg.123]    [Pg.304]    [Pg.57]    [Pg.895]    [Pg.323]    [Pg.246]    [Pg.530]    [Pg.495]    [Pg.466]    [Pg.285]    [Pg.93]    [Pg.153]    [Pg.626]    [Pg.670]    [Pg.1021]    [Pg.196]    [Pg.345]    [Pg.129]    [Pg.264]    [Pg.493]    [Pg.405]    [Pg.12]    [Pg.647]    [Pg.63]    [Pg.102]    [Pg.830]    [Pg.428]    [Pg.871]    [Pg.134]    [Pg.101]    [Pg.757]    [Pg.137]    [Pg.670]    [Pg.187]    [Pg.173]    [Pg.228]   
See also in sourсe #XX -- [ Pg.279 ]




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Phase decomposition

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