Bibliographic Details
| Title: |
Interfacial chemistry in internally oxidized (Cu,Mg)-alloys |
| Authors: |
Backhaus-Ricoult, M.1 monika@ccmr.cornell.edu, Samet, L.2,3, Trichet, M.-F.1, Hÿtch, M. J.1, Imhoff, D.2 |
| Source: |
Journal of Solid State Chemistry. Jun2003, Vol. 173 Issue 1, p172. 17p. |
| Subjects: |
Oxidation, Magnesium oxide |
| Abstract: |
(Cu,Mg) alloys are internally oxidized at different oxygen chemical potential at 900°C. Oxidation scale microstructure is studied by SEM and TEM. MgO forms as large magnesia agglomerates without any special orientation relationship and isolated cubo-octahedral topotaxial MgO precipitates, the shape of which varies with decreasing oxygen activity from octahedral to cubic. The interfaces of the cubo-octahedral precipitates are studied in detail by CTEM, HREM and EELS. At the highest oxygen activity, important rigid-body contraction/expansion across the interface is found together with a strong modification in the interfacial electronic structure (compared to the adjacent bulk phases) indicating important hybridization of O 2p and Cu 3d states. Both suggest oxide bonding. At lower oxygen activity, interfaces show increasing structural disorder in the copper phase and microfaceting or terracing of the interfacial plane; the intensity of interfacial ELNES features associated to the O 2p and Cu 3d hybridization diminishes and finally disappears with decreasing oxygen activity. Changes with oxygen chemical potential in precipitate morphology, interface atomic and electronic structure are explained by Gibbs’ adsorption/desorption of excess oxygen to the interface. Adsorption isotherms are modeled for various configurations and compared to the experimental results. [Copyright &y& Elsevier] |
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| Database: |
Engineering Source |