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Ferroelectric properties of the LaF3 superionic conductor nanocluster

V. F. KrivorotovInstitute of Ion-Plasma and Laser Technologies, Academy of Sciences of the Uzbekistan Republic, ul. Durman yuli 33, Tashkent, 100125, Republic of UzbekistanS. Z. MirzaevInstitute of Ion-Plasma and Laser Technologies, Academy of Sciences of the Uzbekistan Republic, ul. Durman yuli 33, Tashkent, 100125, Republic of UzbekistanG. S. NuzhdovInstitute of Ion-Plasma and Laser Technologies, Academy of Sciences of the Uzbekistan Republic, ul. Durman yuli 33, Tashkent, 100125, Republic of Uzbekistan
Technical Physicsjournal2016en
ABI

Аннотация

We report on the results of quantum-chemical calculation of the lattice energy in a LaF3 superionic crystal of size 3.5 × 2.0 × 2.2 nm that contains 1200 ions with different structural configurations of fluorine ions. It has been shown that the most energetically disadvantageous configurations of fluorine ions correspond to arbitrarily (randomly) disordered nanolattices in the case when fluorine ions of all three types (F1, F2, and F3) participate in their melting. It has been found that unidirectionally disordered nanolattices that contain a large number of defect dipoles of the anion vacancy–interstitial fluorine atom type with parallel dipole moments is energetically more advantageous than nanolattices with randomly disordered structure. It has been proposed that the electric field produced by a large number of parallel defect dipoles is formed in disordered LaF3 nanolattices even at room temperatures. This makes it possible to classify microscopically small LaF3 crystallites as promising functional materials that can be used, e.g., in modern solid-state technologies.

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