DC Electric Field-Enhanced Grain-Boundary Mobility in Magnesium Aluminate During Annealing

Magnesium aluminate spinel was sintered and annealed at 1300°C under an applied 1000 V/cm DC electric field. The experiment was designed such that current could be removed as a variable and just the effect of a noncontact electric field was studied. Enhanced grain growth was observed for both sample...

Full description

Saved in:
Bibliographic Details
Published inJournal of the American Ceramic Society Vol. 99; no. 6; pp. 1951 - 1959
Main Authors Rufner, Jorgen F., Kaseman, Derrick, Castro, Ricardo H.R., van Benthem, Klaus
Format Journal Article
LanguageEnglish
Published Columbus Blackwell Publishing Ltd 01.06.2016
Wiley Subscription Services, Inc
Subjects
Online AccessGet full text

Cover

Loading…
More Information
Summary:Magnesium aluminate spinel was sintered and annealed at 1300°C under an applied 1000 V/cm DC electric field. The experiment was designed such that current could be removed as a variable and just the effect of a noncontact electric field was studied. Enhanced grain growth was observed for both samples that were sintered or annealed after densification in the presence of an electric field. Grain‐boundary character distributions revealed that no microstructural changes were induced due to the field. However, the electric field was found to enhance the kinetic movement of cations within the lattice. Energy‐loss spectroscopy experiments revealed cation segregation resulting in regions of Mg‐rich and Al‐rich layers adjacent the grain‐boundary cores. The defects generated during segregation supported the generation of a space charge gradient radiating from the grain‐boundary core out into the bulk, which was significantly affected by the applied field. The interaction between the field and space charges effectively reduced the activation energy for cation movement across boundaries thereby enhanced grain‐boundary mobility and resultant grain growth.
Bibliography:Data S1. The supplemental online materials contain detailed information about experimental procedures for orientation imaging using precession electron nano diffraction, as well as the experimental results and discussion for the analysis of grain boundary structure distribution maps.
ArticleID:JACE14157
ark:/67375/WNG-Z2560JVX-J
US Department of Energy, Office of Basic Energy Sciences - No. DOE DE-FG02-11ER46795
Los Alamos National Laboratory Material Design Institute
istex:31E54E3E3D650FBBE53EE76631B21FA8C6AE38F1
University of California Laboratory Fee program - No. #12-LR-238313
ObjectType-Article-1
SourceType-Scholarly Journals-1
ObjectType-Feature-2
content type line 23
ISSN:0002-7820
1551-2916
DOI:10.1111/jace.14157