Phase transition and enhanced magneto-dielectric response in BiFeO3-DyMnO3 multiferroics
Author(s) -
Satya N. Tripathy,
Dhiren K. Pradhan,
K. K. Mishra,
Shrabanee Sen,
R. Palai,
Marian Paulch,
J. F. Scott,
Ram S. Katiyar,
Dillip K. Pradhan
Publication year - 2015
Publication title -
journal of applied physics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.699
H-Index - 319
eISSN - 1089-7550
pISSN - 0021-8979
DOI - 10.1063/1.4916927
Subject(s) - rietveld refinement , multiferroics , materials science , dielectric , magnetization , differential scanning calorimetry , condensed matter physics , phase transition , dielectric spectroscopy , antiferromagnetism , transition temperature , permittivity , nuclear magnetic resonance , crystal structure , crystallography , ferroelectricity , magnetic field , chemistry , superconductivity , physics , thermodynamics , optoelectronics , electrode , quantum mechanics , electrochemistry
This work is partially supported by DST fast track Project No. SR/FTP/PS-16/2009. Dhiren K. Pradhan acknowledges IFN (NSF Grant No. EPS—01002410) for fellowship. The work at UPR was supported by National Science Foundation (NSF DMR 1410869) and Institute for Functional Nanomaterials (IFN).We report systematic studies on crystal structure and magneto-dielectric properties of (1 − x) BiFeO3-x DyMnO3 (0.0 ≤ x ≤ 0.2) nanoceramics synthesized by auto-combustion method. Rietveld refinement of X-ray diffraction data indicates a structural transition from R3c to R3c + Pn21a at x = 0.1. Field emission scanning electron micrographs display a decrease in grain size with increase in x. The presence of dielectric anomalies around antiferromagnetic transition temperature implies the magnetoelectric coupling. Dielectric measurements showed decrease in magnetic ordering temperature with increasing x in agreement with differential scanning calorimetry results. A significant increase in magnetization has been found with increasing DyMnO3 substitution. Magneto-impedance spectroscopy reveals a significant change (∼18%) in dielectricpermittivity at H = 2 T for x = 0.2.Publisher PDFPeer reviewe
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