You need JavaScript to view this

Probing the phase separation in the doped manganites by the magnetic resonance methods

Abstract

Here we present magnetic resonance study which confirms an existence of a phase separation picture in Eu{sub 0.7}Pb{sub 0.3}MnO{sub 3} single crystals. The measurements were performed with a standard technique and with using unconventional schemes of the magnetic resonance method. The inhomogeneous paramagnetic-ferromagnetic state, which is sensitive to a magnetic field, takes place in 0.65T{sub C}-1.15T{sub C} temperature range, where the colossal magnetoresistance effect is observed. The behaviour of spectra suggests that a scenario of the phase separation is realized and the mixed state is not related to a simple chemical inhomogeneity. The changes of the conductivity induced by the microwave resonance absorption are observed in a vicinity of T{sub C}, too. The changes are not related to a trivial heating of the sample by the microwave radiation. We propose a mechanism connected with the change of equilibrium concentrations of existing phases, this change takes place when the system is under magnetic resonance conditions. To analyze the experimental data we applied the effective-medium approximation for two-component system. Also we attracted the simplest phenomenological model qualitatively reproducing the essential features of the behaviour of the two-phase system. (author)
Authors:
Volkov, N; Pietrakowskii, G; Sablina, K; Patrin, K [1] 
  1. L.V. Kirensky Institute of Physics SB RAS, Krasnoyarsk (Russian Federation)
Publication Date:
Jul 01, 2004
Product Type:
Journal Article
Resource Relation:
Journal Name: Acta Physica Polonica. Series A; Journal Volume: 105; Journal Issue: 1-2; Conference: Colossal Magnetoresistance - New Materials and New Ideas (in frames of E-MRS), Warsaw (Poland), 15-19 Sep 2003; Other Information: 11 refs, 8 figs; PBD: 2004
Subject:
36 MATERIALS SCIENCE; ABSORPTION SPECTRA; DOPED MATERIALS; ELECTRIC CONDUCTIVITY; EUROPIUM COMPOUNDS; FERROMAGNETIC MATERIALS; LEAD COMPOUNDS; MAGNETIC FIELDS; MAGNETIC RESONANCE; MAGNETIZATION; MAGNETORESISTANCE; MANGANATES; MICROWAVE RADIATION; MONOCRYSTALS; PARAMAGNETISM; PHASE STUDIES; TEMPERATURE DEPENDENCE; X-RAY DIFFRACTION
OSTI ID:
20617042
Research Organizations:
Institute of Physics, Polish Academy of Sciences, Warsaw (Poland); European Materials Research Society, Strasbourg (France); Committee of Physics Polish Academy of Physics (Poland)
Country of Origin:
Poland
Language:
English
Other Identifying Numbers:
Journal ID: ISSN 0587-4246; ATPLB6; Other: KRSF-RFBR grant no 02-02-97702; TRN: PL0500733060271
Submitting Site:
INIS
Size:
page(s) 69-80
Announcement Date:
Aug 21, 2005

Citation Formats

Volkov, N, Pietrakowskii, G, Sablina, K, and Patrin, K. Probing the phase separation in the doped manganites by the magnetic resonance methods. Poland: N. p., 2004. Web.
Volkov, N, Pietrakowskii, G, Sablina, K, & Patrin, K. Probing the phase separation in the doped manganites by the magnetic resonance methods. Poland.
Volkov, N, Pietrakowskii, G, Sablina, K, and Patrin, K. 2004. "Probing the phase separation in the doped manganites by the magnetic resonance methods." Poland.
@misc{etde_20617042,
title = {Probing the phase separation in the doped manganites by the magnetic resonance methods}
author = {Volkov, N, Pietrakowskii, G, Sablina, K, and Patrin, K}
abstractNote = {Here we present magnetic resonance study which confirms an existence of a phase separation picture in Eu{sub 0.7}Pb{sub 0.3}MnO{sub 3} single crystals. The measurements were performed with a standard technique and with using unconventional schemes of the magnetic resonance method. The inhomogeneous paramagnetic-ferromagnetic state, which is sensitive to a magnetic field, takes place in 0.65T{sub C}-1.15T{sub C} temperature range, where the colossal magnetoresistance effect is observed. The behaviour of spectra suggests that a scenario of the phase separation is realized and the mixed state is not related to a simple chemical inhomogeneity. The changes of the conductivity induced by the microwave resonance absorption are observed in a vicinity of T{sub C}, too. The changes are not related to a trivial heating of the sample by the microwave radiation. We propose a mechanism connected with the change of equilibrium concentrations of existing phases, this change takes place when the system is under magnetic resonance conditions. To analyze the experimental data we applied the effective-medium approximation for two-component system. Also we attracted the simplest phenomenological model qualitatively reproducing the essential features of the behaviour of the two-phase system. (author)}
journal = []
issue = {1-2}
volume = {105}
journal type = {AC}
place = {Poland}
year = {2004}
month = {Jul}
}