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Synthesis of rare earth oxide carbonates and thermal stability of Nd2O2CO3 II
32
Citations
10
References
1999
Year
Materials ScienceInorganic ChemistryChemical EngineeringRare Earth MineralEngineeringRare Earth AcetatesCorresponding Rare EarthCalcium AluminateNd2o2co3 IiCatalysisCokingChemistryThermal StabilityRare EarthSupercritical Co2
Oxides with practical applications, such as high T c superconductors, catalysts, solid oxide fuel cells and membranes frequently contain basic cations, which under synthesis or process conditions will be subjected to CO 2 -containing atmospheres and a carbonatization degradation may be initiated. In this paper the conditions for synthesis (formation) of potential Ln 2 O 2 CO 3 degradation products are described for the rare earth oxides Ln 2 O 3 , Ln = La, Nd. Emphasis is put on describing conditions for the formation of well characterised phase-pure samples of La 2 O 2 CO 3 (type IA/II), Nd 2 O 2 CO 3 (type IA/II) and of the solid solution series La 2–x Nd x O 2 CO 3 (type II), 0 ≤ x ≤ 2, by means of decomposition studies on rare earth acetates and citrates and by carbonatization studies on the corresponding rare earth oxides.For the calculation of phase stability relationships, thermodynamic data for Ln 2 O 2 CO 3 are required. Herein, the thermal stability of Nd 2 O 2 CO 3 II has been studied by means of thermogravimetry and isothermal annealing experiments in atmospheres with various partial pressures of CO 2 (30.4 to 1.01×10 5 Pa). The experimental results were used to establish the equilibrium pressures of CO 2 for the decomposition reaction<$$>\[ {\rm Nd}_{\rm 2} {\rm O}_{\rm 2} {\rm CO}_{\rm 3}\ {\rm II}\;{\rm (s)} \to {\rm A\hbox-Nd}_{\rm 2} {\rm O}_{\rm 3} \;{\rm (s) + CO}_{\rm 2} \;{\rm (g)} \]<$$>in the temperature region 800–1100 K. The median standard molar enthalpy and entropy of the decomposition reaction are 213 ± 27 kJ mol –1 and 195 ± 26 J K –1 mol –1 , respectively. At 298 K Δ d H m o = 221 ± 27 kJ mol –1 and Δ d S m o = 206 ± 26 J K –1 mol –1 .
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