Abstract
Solid electrolyte nanoceramics Pr \(_{{1-y}}\) SryF \(_{{3-y}}\) (y = 0.03, sp. gr. \(P\bar {3}c1\) ) were obtained by high-energy milling of melt-grown crystals, followed by cold pressing. The phase composition, microstructure, morphology, and electrical properties of nanoceramics were studied using X-ray diffraction analysis, electron microscopy, and impedance spectroscopy. The room-temperature conductivity of the synthesized Pr0.97Sr0.03F2.97 nanoceramics (σcer = 1.7 × 10−7 S/cm) is much lower than the conductivity of the original single crystal (σcrys = 4.0 × 10−4 S/cm), which is due to its low (~75% of the theoretical value) density. Heat treatment of nanoceramics at 823 K in vacuum leads to a threefold increase in σcer, and annealing at 1273 K in a fluorinating atmosphere results in further increase in conductivity (σcer = 4.3 × 10−5 S/cm) due to the collective recrystallization and significant increase in the ceramics density (up to 90%). The mechanical milling and subsequent heat treatment of Pr \(_{{1-y}}\) SryF \(_{{3-y}}\) nanopowder make it possible to process single-phase highly conductive ceramics. The proposed method for the synthesis of ceramic fluoride nanomaterials as a technological form of solid electrolytes is a promising way for further developments in the field of creating fluorine-ion current sources and fluorine gas sensors.