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X-ray diffraction, Mössbauer spectroscopy, and magnetoelectric effect studies of (BiFeO3)x-(BaTiO3)1-x solid solutions

Treść / Zawartość
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Warianty tytułu
Konferencja
Proceedings of the 9th All - Polish Seminar on Mössbauer Spectroscopy OSSM'2012, 10-13 June 2012, Lublin - Kazimierz Dolny, Poland
Języki publikacji
EN
Abstrakty
EN
In this work the hyperfine interactions in (BiFeO3)x-(BaTiO3)1-x solid solutions with relation to their structural properties have been investigated. X-ray diffraction, Mössbauer spectroscopy and magnetoelectric effect measurements have been used for studies of sintered (BiFeO3)x-(BaTiO3)1-x solid solutions with x = 0.9, 0.8 and 0.7. With increasing contents of BaTiO3, the structural transformation from rhombohedral to cubic was observed. The weakening of the hyperfine magnetic fields accompanied by this transformation. On the other hand, the increasing amount of BaTiO3 caused an increase of the magnetoelectric effect.
Czasopismo
Rocznik
Strony
57--61
Opis fizyczny
Bibliogr. 17 poz., rys.
Twórcy
autor
autor
autor
autor
autor
  • National Centre for Nuclear Research, Nuclear Energy Division, 7 Andrzeja Sołtana Str., 05-400 Otwock/Świerk, Poland, Tel.: +48 22 718 0126, Fax: +48 22 779 3481, k.kowal@ncbj.gov.pl
Bibliografia
  • 1. Blaauw C, van der Woude F (1973) Magnetic and structural properties of BiFeO3. J Phys C: Solid State Phys 6:1422–1431
  • 2. Chandarak S, Unruan M, Sareein T et al. (2009) Fabrication and characterization of (1–x)BiFeO3-xBaTiO3 ceramics prepared by a solid state reaction method. J Magnetics 14;3:120–123
  • 3. Duong GV, Groessinger R (2007) Effect of preparation conditions on magnetoelectric properties of CoFe2O4- BaTiO3 magnetoelectric composites. J Magn Magn Mater 316:e624–e627
  • 4. Duong GV, Groessinger R, Schoenhart M, Bueno-Basques D (2007) The lock-in technique for studying magnetoelectric effect. J Magn Magn Mater 316:390–393
  • 5. Ismailzade IH, Ismailov RM, Alekberov AI, Salaev FM (1981) Investigation of the magnetoelectric (ME)H effect in solid solutions of the systems BiFeO3-BaTiO3 and BiFeO3-PbTiO3. Phys Status Solidi A 68:K81–K85
  • 6. Lokare SA, Devan RS, Chougule BK (2008) Structural analysis and electrical properties of ME composites. J Alloys Compd 454:471–475
  • 7. MacKenzie KJD, Dougherty T, Barrel J (2008) The electronic properties of complex oxides of bismuth with the mullite structure. J Eur Ceram Soc 28:499–504
  • 8. Mahesh Kumar M, Srinivas A, Kumar GS, Suryanarayana SV (1999) Investigation of the magnetoelectric effect in BiFeO3-BaTiO3 solid solutions. J Phys: Condens Matter 11:8131–8139
  • 9. Mahesh Kumar M, Srinivas A, Suryanarayana SV, Kumar GS, Bhimasankaram T (1998) An experimental setup for dynamic measurement of magnetoelectric effect. Bull Mater Sci 21;3:251–255
  • 10. Palewicz A, Szumiata T, Przeniosło R, Sosnowska I, Margiolaki I (2006) Search for new modulations in the BiFeO3 structure: SR diffraction and Mössbauer studies. Solid State Commun 140:359–363
  • 11. Park TJ, Papaefthymiou GD, Viescas AJ, Lee Y, Zhou H, Wong SS (2010) Composition-dependent magnetic properties of BiFeO3-BaTiO3 solid solution nanostructures. Phys Rev B 82:024431 (10 pp)
  • 12. Przeniosło R, Palewicz A, Regulski M, Sosnowska I, Ibberson RM, Knight KS (2006) Does the modulated magnetic structure of BiFeO3 change at low temperatures? J Phys: Condens Matter 18:2069–2075
  • 13. Ruette B, Zvyagin S, Pyatakov AP et al. (2004) Magnetic field-induced phase transition in BiFeO3 observed by high-field electron spin resonance: Cycloidal to homogeneous spin order. Phys Rev B 69:064114 (7 pp)
  • 14. Singh RS, Bhimasankaram T, Kumar GS, Surayanarayama SV (1994) Dielectric and magnetoelectric properties of Bi5FeTi3O15. Solid State Commun 91:567–569
  • 15. Sosnowska I, Peterlin-Neumaier, Steichele E (1982) Spiral magnetic ordering in bismuth ferrite. J Phys C: Solid State Phys 15:4835–4846
  • 16. Wodecka-Duś B, Czekaj D (2010) Synthesis, crystal structure and dielectric behaviour of 0.7BiFeO3-0.3BaTiO3 ceramics. Materiały Ceramiczne 62;2:121–125 (in Polish)
  • 17. Zvezdin AK, Logginov AS, Meshkov GA, Pyatakov AP (2007) Multiferroics: promising materials for microelectronics, spintronics, and sensor technique. Bull Russ Acad Sci: Physics 71;11:1561–1562
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BUJ8-0025-0046
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