Structural, electrical and magnetic characteristics of improper multiferroic: GdFeO3

被引:78
|
作者
Sahoo, Sushrisangita [1 ]
Mahapatra, P. K. [1 ]
Choudhary, R. N. P. [1 ]
Nandagoswami, M. L. [2 ]
Kumar, Ashok [3 ]
机构
[1] Siksha O Anusandhan Univ, Dept Phys, Multifunct Mat Res Lab, Bhubaneswar, Orissa, India
[2] Vidyasagar Univ, Midnapore Coll, Midnapore, WB, India
[3] Natl Phys Lab, Dr KS Krishnan Marg, New Delhi 110012, India
关键词
improper multiferroic; dielectric; impedance; conductivity; DIELECTRIC-RELAXATION; FIELD; SYSTEM; CONDUCTIVITY; PARTICULATE;
D O I
10.1088/2053-1591/3/6/065017
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Studies of dielectric, impedance, conductivity, magnetic and magneto-electric (ME) properties of GdFeO3 ceramics fabricated by chemical method are reported here. The synthesized powder is phase-pure and crystallizes in the orthorhombic crystal structure. Below 50 degrees C, the impedance has only grain contribution, while at higher temperatures, it has both grain and grain boundary contributions. Based on the depression angle of the Nyquist plot, the inhomogeneity of the sample is estimated. The capacitance data reveal that at low temperatures, the sample behaves as a leaky capacitor while at higher temperatures the sample shows the effect of the diffusion of thermally excited charge carriers across a barrier. In the low-frequency domain, the dielectric characteristics were explained on the basis of the Maxwell-Wagner mechanism, while in the high-frequency range those were correlated to the grain effect. The frequency dependent characteristic of the tangent loss is explained as a combined contribution from the Debye-like relaxation and dc conductivity related mechanism at higher temperatures. The temperature dependence of the dielectric characteristic and data are found to fit with two Gaussian peaks centered at 148 degrees C and 169 degrees C. While the first peak is explained on the basis of the Maxwell-Wagner mechanism, the second has its origin in magnetic reordering and the shifting of Gd3+ ions along the c-axis. The magnetic reordering also results in a sharp decrease of conductivity between 169 degrees C and 243 degrees C. The frequency dependent ac conductivity is explained on the basis of the correlated barrier hopping model and the quantum mechanical hopping model for the different frequency domain. The existence of P-E and M-Hloops support its improper ferroelectric behavior and canted anti-ferromagnetism respectively. The ME coefficient of the sample is found to be 1.78 mV cm(-1) Oe(-1).
引用
收藏
页数:20
相关论文
共 50 条
  • [31] Epitaxial growth of hexagonal GdFeO3 thin films with magnetic order by pulsed laser deposition
    Kasahara, Jun
    Katayama, Tsukasa
    Chikamatsu, Akira
    Hamasaki, Yosuke
    Hasegawa, Tetsuya
    THIN SOLID FILMS, 2022, 757
  • [32] Prediction of lattice constant in perovskites of GdFeO3 structure
    Li, GH
    Thing, YH
    Zeng, YZ
    Wang, CM
    Wu, P
    JOURNAL OF PHYSICS AND CHEMISTRY OF SOLIDS, 2003, 64 (11) : 2147 - 2156
  • [33] Study of Surface Morphology of Irradiated GdFeO3 Thin Films
    Kaur, Pawanpreet
    Pandit, Rabia
    Sharma, K. K.
    Kumar, Ravi
    2ND INTERNATIONAL CONFERENCE ON CONDENSED MATTER AND APPLIED PHYSICS (ICC-2017), 2018, 1953
  • [34] Synthesis and dielectric properties of Zn doped GdFeO3 ceramics
    Vandana, C. Sai
    Guravamma, J.
    Rudramadevi, B. Hemalatha
    INTERNATIONAL CONFERENCE ON ADVANCES IN MATERIALS AND MANUFACTURING APPLICATIONS (ICONAMMA-2016), 2016, 149
  • [35] The Influence of Fe Substitution in GdFeO3 on Redox and Catalytic Properties
    L. V. Yafarova
    O. I. Silyukov
    T. A. Kryuchkova
    T. F. Sheshko
    I. A. Zvereva
    Russian Journal of Physical Chemistry A, 2020, 94 : 2679 - 2684
  • [36] Structural suitability of GdFeO3 as a magnetic buffer layer for GdBa2Cu3O7-x superconducting thin films
    Park, Fl S.
    Oh, J. Y.
    Song, B. H.
    Kang, B.
    PROGRESS IN SUPERCONDUCTIVITY AND CRYOGENICS, 2021, 23 (02): : 14 - 18
  • [37] Magnetic phase transitions and giant magnetocaloric effect in Mn-doped GdFeO3 polycrystalline
    Wu, Zhongjin
    Liu, Guoqing
    Gao, Kaiyang
    Lu, Zeyi
    Liu, Min
    JOURNAL OF ALLOYS AND COMPOUNDS, 2025, 1017
  • [38] The Influence of Fe Substitution in GdFeO3 on Redox and Catalytic Properties
    Yafarova, L. V.
    Silyukov, O. I.
    Kryuchkova, T. A.
    Sheshko, T. F.
    Zvereva, I. A.
    RUSSIAN JOURNAL OF PHYSICAL CHEMISTRY A, 2020, 94 (13) : 2679 - 2684
  • [39] FORMATION MECHANISM OF GdFeO3 NANOPARTICLES UNDER THE HYDROTHERMAL CONDITIONS
    Tugova, E. A.
    Zvereva, I. A.
    NANOSYSTEMS-PHYSICS CHEMISTRY MATHEMATICS, 2013, 4 (06): : 851 - 856
  • [40] Nanocrystalline orthoferrite GdFeO3 from a novel heterobimetallic precursor
    Mathur, S
    Shen, H
    Lecerf, N
    Kjekshus, A
    Fjellvåg, H
    Goya, GF
    ADVANCED MATERIALS, 2002, 14 (19) : 1405 - 1409