Published September 2003 | Version v1
Journal article

Phase equilibrium in the system Ln-Mn-O V. Ln=Yb and Dy at 1100 deg. C

Description

Phase equilibrium was established in the Yb-Mn-O and Dy-Mn-O systems at 1100 deg. C by varying the oxygen partial pressure from -log (PO2/atm)=0-13.00, allowing construction of phase diagrams at 1100 deg. C for the systems Ln2O3-MnO-MnO2. Under experimental conditions, Yb2O3, MnO, Mn3O4, and YbMnO3 phases are found to be present in the Yb-Mn-O system, whereas Dy2O3, MnO, Mn3O4 DyMnO3, and DyMn2O5 phases are present in the Dy-Mn-O system. Ln2MnO4, Mn2O3, and MnO2 are not stable in either system. Small nonstoichiometric ranges are found in the LnMnO3 phase, with the nonstoichiometry represented by the equations, NO/NYbMnO3=1.00x10-4(log PO2)3+1.30x10-3(log PO2)2+7.20x10-3(log PO2)+5.00x10-5 and NO/NDyMnO3=1.00x10-4(log PO2)3+1.80x10-3(log PO2)2+9.30x10-3(log PO2)+1.69x10-2. Activities of the components in the solid solutions are calculated using these equations. LnMnO3 may range Ln2O3-rich to Ln2O3-poor, while MnO is slightly nonstoichiometric to the oxygen-rich side. DyMn2O5 also seems to be nonstoichiometric. Lattice constants of LnMnO3 under different oxygen partial pressures were determined, as well as lattice constants of DyMn2O5 quenched in air. The standard Gibbs energy changes of reactions appearing in the phase diagrams were calculated

Additional details

Identifiers

PII
S0022459603002111;

Publishing Information

Journal Title
Journal of Solid State Chemistry
Journal Volume
174
Journal Issue
2
Journal Page Range
p. 249-256
ISSN
0022-4596
CODEN
JSSCBI

Optional Information

Copyright
Copyright (c) 2003 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.