4.7 Article

Conversion of MgO nanocrystal surfaces into ceramic interfaces: Exsolution of BaO as photoluminescent interface probes

期刊

JOURNAL OF THE AMERICAN CERAMIC SOCIETY
卷 106, 期 2, 页码 897-912

出版社

WILEY
DOI: 10.1111/jace.18833

关键词

BaO; cathodoluminescence; chemical vapor synthesis; nanocrystalline ceramics; photoluminescence; segregation; surface excitons

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Ion exsolution is crucial for engineering intergranular regions in ceramic microstructures. BaO admixtures trapped inside MgO grains undergo annealing-induced exsolution to generate photoluminescent surface and interface structures. The effects of BaO admixtures on grain coarsening and powder densification were compared using spectroscopy measurements and in-depth structure characterization.
Ion exsolution can be instrumental to engineer intergranular regions inside ceramic microstructures. BaO admixtures that were trapped inside nanometer-sized MgO grains during gas phase synthesis undergo annealing-induced exsolution to generate photoluminescent surface and interface structures. During their segregation from the bulk into the grain interfaces, the BaO admixtures impact grain coarsening and powder densification, effects that were compared for the first time using an integrated characterization approach. For the characterization of the different stages the materials adopt between powder synthesis and compact annealing, spectroscopy measurements (UV-Vis diffuse reflectance, cathodo- and photoluminescence [PL]) were complemented by an in-depth structure characterization (density measurements, X-ray diffraction [XRD], and electron microscopy). Depending on the Ba2+ concentration, isolated impurity ions either become part of low-coordinated surface structures of the MgO grains where they give rise to a characteristic bright PL emission profile around lambda = 500 nm, or they aggregate to form nanocrystalline BaO segregates at the inner pore surfaces to produce an emission feature centered at lambda = 460 nm. Both types of PL emission sites exhibit O-2 gas adsorption-dependent PL emission properties that are reversible with respect to its pressure. The here-reported distribution of BaO segregates between the intergranular region and the free pore surfaces inside the MgO-based compacts underlines that solid-based exsolution strategies are well suited to stabilize nanometer-sized segregates of metal oxides that otherwise would coalesce and grow in size beyond the nanoscale.

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