Role of structure imperfection in the formation of the magnetotransport properties of rare-earth manganites with a perovskite structure
- Authors: Pashchenko A.V.1,2, Pashchenko V.P.1, Prokopenko V.K.1, Turchenko V.A.3, Revenko Y.F.1, Mazur A.S.1, Sycheva V.Y.1, Liedienov N.A.1, Pitsyuga V.G.4, Levchenko G.G.1
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Affiliations:
- Galkin Donetsk Institute for Physics and Engineering
- Tugan-Baranovsky Donetsk National University of Economy and Trade
- Joint Institute for Nuclear Research
- Donetsk National University
- Issue: Vol 124, No 1 (2017)
- Pages: 100-113
- Section: Order, Disorder, and Phase Transition in Condensed System
- URL: https://journals.rcsi.science/1063-7761/article/view/191793
- DOI: https://doi.org/10.1134/S1063776116150127
- ID: 191793
Cite item
Abstract
The structure, the structure imperfection, and the magnetoresistance, magnetotransport, and microstructure properties of rare-earth perovskite La0.3Ln0.3Sr0.3Mn1.1O3–δ manganites are studied by X-ray diffraction, thermogravimetry, electrical resistivity measurement, magnetic, 55Mn NMR, magnetoresistance measurement, and scanning electron microscopy. It is found that the structure imperfection increases, and the symmetry of a rhombohedrally distorted R3̅c perovskite structure changes into its pseudocubic type during isovalent substitution for Ln = La3+, Pr3+, Nd3+, Sm3+, or Eu3+ when the ionic radius of an A cation decreases. Defect molar formulas are determined for a real perovskite structure, which contains anion and cation vacancies. The decrease in the temperatures of the metal–semiconductor (Tms) and ferromagnet–paramagnet (TC) phase transitions and the increase in electrical resistivity ρ and activation energy Ea with increasing serial number of Ln are caused by an increase in the concentration of vacancy point defects, which weaken the double exchange 3d4(Mn3+)–2p6(O2–)–3d3(Mn4+)–V(a)–3d4(Mn3+). The crystal structure of the compositions with Ln = La contains nanostructured planar clusters, which induce an anomalous magnetic hysteresis at T = 77 K. Broad and asymmetric 55Mn NMR spectra support the high-frequency electronic double exchange Mn3+(3d4) ↔ O2–(2p6) ↔ Mn4+(3d3) and indicate a heterogeneous surrounding of manganese by other ions and vacancies. A correlation is revealed between the tunneling magnetoresistance effect and the crystallite size. A composition–structure imperfection–property experimental phase diagram is plotted. This diagram supports the conclusion about a strong influence of structure imperfection on the formation of the magnetic, magnetotransport, and magnetoresistance properties of rare-earth perovskite manganites.
About the authors
A. V. Pashchenko
Galkin Donetsk Institute for Physics and Engineering; Tugan-Baranovsky Donetsk National University of Economy and Trade
Author for correspondence.
Email: alpash@mail.ru
Ukraine, Kiev, 03680; Kryvoy Rog, 50005
V. P. Pashchenko
Galkin Donetsk Institute for Physics and Engineering
Email: alpash@mail.ru
Ukraine, Kiev, 03680
V. K. Prokopenko
Galkin Donetsk Institute for Physics and Engineering
Email: alpash@mail.ru
Ukraine, Kiev, 03680
V. A. Turchenko
Joint Institute for Nuclear Research
Email: alpash@mail.ru
Russian Federation, Dubna, Moscow oblast, 141980
Yu. F. Revenko
Galkin Donetsk Institute for Physics and Engineering
Email: alpash@mail.ru
Ukraine, Kiev, 03680
A. S. Mazur
Galkin Donetsk Institute for Physics and Engineering
Email: alpash@mail.ru
Ukraine, Kiev, 03680
V. Ya. Sycheva
Galkin Donetsk Institute for Physics and Engineering
Email: alpash@mail.ru
Ukraine, Kiev, 03680
N. A. Liedienov
Galkin Donetsk Institute for Physics and Engineering
Email: alpash@mail.ru
Ukraine, Kiev, 03680
V. G. Pitsyuga
Donetsk National University
Email: alpash@mail.ru
Ukraine, Vinnitsa, 21021
G. G. Levchenko
Galkin Donetsk Institute for Physics and Engineering
Email: alpash@mail.ru
Ukraine, Kiev, 03680
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