Morphological confinement of secondary phases in entropy stabilized oxides
Abstract
Four transition metal entropy-stabilized oxide samples were synthesized with varying processing methods to create four different average grain sizes: 90 nm, 200 nm, 430 nm, and 15 μm. All samples were heat treated to form a Cu-rich tenorite secondary phase, analyzed by scanning electron microscopy and energy-dispersive x-ray spectroscopy. Three secondary-phase morphologies were identified: Cu-rich tenorite needle-like particles, Cu-rich tenorite filled grain boundaries, and Cu-rich tenorite nano-grains. Average grain size and boundary layer thickness have a significant impact on the morphology of the secondary phase. The effect of grain size and boundary layer thickness on the secondary-phase morphology, termed morphological confinement, was simulated using Dream 3.D with a tetrakaidekahedron geometric model. These synthetic microstructure simulation results produced three confinement regimes (unconfined particles, confined particles, and morphological confinement). For coarse-grain samples, the geometric conditions allow for unconfined secondary-phase particles to form in the primary phase. For nanocrystalline grain samples, the geometric conditions restrict the secondary-phase formation to individual nanograins, distinct from primary-phase nanograins. For intermediate grain sizes, there is a diffuse transition between the morphological confinement regimes, allowing a sample to exhibit one or more secondary-phase morphologies simultaneously. Consequently, this study highlights the novel approach of using grain size to manipulate the morphology of secondary phases in multi-phase ceramics, establishing the foundation for future studies on the effect of the morphology variation on functional and mechanical behavior.
Article Details
Journal Info
Journal of Applied Physics
American Institute of Physics
Authors (3)
Jacob E. Norman
Department of Materials Science and Engineering, Texas A & M University 1 , College Station, Texas 77840,
Julie M. Schoenung
Department of Materials Science and Engineering, Texas A & M University 1 , College Station, Texas 77840,
Alexander D. Dupuy
Department of Materials Science and Engineering, University of Connecticut 3 , Storrs, Connecticut 06269,