DOE OSTI · 1852685
Passivation-driven speciation, dealloying and purification
Abstract
Thin passivating surface oxide layers on metal alloys form a dissipation horizon between dissimilar phases, hence harbour an inherent free energy and composition gradient. We exploit this gradient to drive order and selective surface separation (speciation), enabling redox-driven enrichment of the core by selective conversion of low standard reduction potential (E°) components into oxides. Additionally, coupling this oxide growth to volumetric changes during solidification allows us to create oxide crystallites trapped in a metal (‘ship-in-a-bottle’) or extrusion of metal fingerlings on the heavily oxidized particle. We confirm the underlying mechanism through high temperature X-ray diffraction and characterization of solidification-trapped particle states. We demonstrate that engineering the passivating surface oxide can lead to purification via selective dealloying with concomitant enrichment of the core, leading to disparate particle morphologies.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Martin, Andrew, Chang, Boyce, Cutinho, Joel, Shen, Liyang, Ward, Thomas, Cochran, Eric W., Thuo, Martin M.. 2021-01-19. Passivation-driven speciation, dealloying and purification. https://doi.org/10.1039/d0mh01832e
Cite the original work for its findings. Save a collection to share your selection of sources.