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Selected multiferroic perovskite oxides containing rare earth and transition metal elements 被引量:2

Selected multiferroic perovskite oxides containing rare earth and transition metal elements
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摘要 Multiferroic materials are currently the subject of intensive research worldwide, because of both their fundamental scientific problems and also possible technological applications. Among a number of candidates in the laboratories, compounds consisting of rare earth and transition metal perovskite oxides have very unusual structural and physical properties. In contrast to the so-called type I multiferroics, ferroelectricity may be induced by magnetic ordering or by applying external fields. In this review, the recent progress on the experimental and theoretical studies of some selected type II multiferroics is presented, with a focus on the perovskite oxides containing rare earth and transition metal elements. The rare earth orthoferrite crystals, rare earth titanate strained film, and rare earthbased superlattices are systematically reviewed to provide a broad overview on their promising electric, magnetic, and structural properties. The recent experimental advances in single-crystal growth by optical floating zone method are also presented. First-principles investigations, either supported by experimental results or awaiting for experimental verifications, are shown to offer useful guidance for the future applications of unconventional multiferroics. Multiferroic materials are currently the subject of intensive research worldwide, because of both their fundamental scientific problems and also possible technological applications. Among a number of candidates in the laboratories, compounds consisting of rare earth and transition metal perovskite oxides have very unusual structural and physical properties. In contrast to the so-called type I multiferroics, ferroelectricity may be induced by magnetic ordering or by applying external fields. In this review, the recent progress on the experimental and theoretical studies of some selected type II multiferroics is presented, with a focus on the perovskite oxides containing rare earth and transition metal elements. The rare earth orthoferrite crystals, rare earth titanate strained film, and rare earthbased superlattices are systematically reviewed to provide a broad overview on their promising electric, magnetic, and structural properties. The recent experimental advances in single-crystal growth by optical floating zone method are also presented. First-principles investigations, either supported by experimental results or awaiting for experimental verifications, are shown to offer useful guidance for the future applications of unconventional multiferroics.
机构地区 Department of Physics
出处 《Chinese Science Bulletin》 SCIE EI CAS 2014年第36期5170-5179,共10页
基金 supported by the National Basic Research Program of China(2015CB921600) the National Natural Science Foundation of China(51372149,50932003,11274221,11274222) Qi Ming Xing Project from Shanghai Municipal Science and Technology Commission(14QA1402000) Eastern Scholar Program and Shu Guang Program(12SG34)from Shanghai Municipal Education Commission
关键词 钙钛矿型氧化物 过渡金属元素 稀土元素 铁电性 钙钛矿氧化物 外部磁场 结构特性 实验室 Multiferroics Rare earth Transition metal Perovskite Epitaxial strain Superlattice
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  • 1Wang J, Neaton JB, Zheng H, Nagarajan V, Ogale SB, Liu B, Viehland D, Vaithyanathan V, Schlom DG., Waghmare UV, Spaldin NA, Rabe KM, Wuttig M, Ramesh R. Epitaxial BiFeO3 multiferroic thin film heterostructures. Science, 2003, 299: 1719-1722.
  • 2Kimura T, Goto T, Shintani H, Ishizaka K, Arima T, Tokura Y. Magnetic control of ferroelectric polarization. Nature, 2003, 426: 55-58.
  • 3Hur N, Park S, Sharma PA, Ahn JS, Guha S, Cheong SW. Electric polarization reversal and memory in a multiferroic material induced by magnetic fields. Nature, 2004, 429: 392-395.
  • 4Lottermoser T, Lonkai T, Amann U, Hohlwein D, Ihringer J, Fiebig M. Magnetic phase control by an electric field. Nature, 2004, 430: 541-544.
  • 5Spaldin NA, Fiebig M. The renaissance of magnetoelectric multiferroics. Science, 2005, 309: 391-392.
  • 6Katsura H, Nagaosa N, Balatsky AV. Spin current and magnetoelectric effect in noncollinear magnets. Phys Rev Lett, 2005, 95: 057205-1-057205-4.
  • 7Eerenstein W, Mathur ND, Scott JF. Multiferroic and magnetoelectric materials. Nature, 2006, 442: 759-765.
  • 8Belik AA, Furubayashi T, Matsushita Y, Tanaka M, Hishita S, Takayama-Muromachi E. Indium-based perovskites: a new class of near-room-temperature multiferroics. Angew Chem Int Ed, 2009, 48: 6117-6120.
  • 9Cheong SW, Mostovoy M. Multiferroics: a magnetic twist for ferroelectricity. Nat Mater, 2007, 6: 13-20.
  • 10Choi T, Horibe Y, Yi HT, Choi YJ, Wu W, Cheong SW. Insulating interlocked ferroelectric and structural antiphase domain walls in multiferroic YMnO3. Nat Mater, 2010, 9: 253-258.

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  • 1Kalubarme R S, Pawar S H. Engineering of supercon- ducting Bal_x KxBiO3 thin films: novel electrochemical route [ J ]. J. Supercond. Nov. Magn. , 2012, 2(4) : 823.
  • 2Khosroabadi H, Kobayashi J, Tanaka K, Miyasaka S, Tajima S, Uchiyama H, Baron A Q R. Softening of bond stretching phonon mode in BaI _xKxBiO3 supercon- ductor [J]. J. Supercond. Nov. Magn., 2010, 23 (7) : 1385.
  • 3Nourafkan R, Marsiglio F, Kotliar G. Model of the e- lectron-phonon interaction and optical conductivity of Baj_xKxBiO3 superconductors [J]. Phys. Rev. Lett. , 2012, 109(1) : 017001.
  • 4Markovich V, Fita I, Wisniewski A, Jung G, Mogilyan- sky D, Puzniak R, Titelman L, Gorodetsky G. Spin- glass-like properties of La0.sCa0.zMnO3 nanoparticles en- sembles [J]. Phys. Rev. B, 2010, 81(13): 134440.
  • 5Sarkar T, Raychaudhuri A K, Bera A K, Yusuf S M. Effect of size reduction on the ferromagnetism of the man- ganiteLat_xCaxMnO3(x=0.33) [J]. New J. Phys., 2010, 12: 123026.
  • 6Grutter A, Wong F, Arenholz E, Liberati M, Vailionis A, Suzuki Y. Enhanced magnetism in epitaxial Sr- RuO3 thin films [ J]. Appl. Phys. Lett., 2010, 96 (8) : 082509.
  • 7Haham N, Shperber Y, Schultz M, Naftalis N, Shims- honi E, Reiner J W, Klein L. Scaling of the anoma- lous Hall effect in SrRuO3 [J]. Phys. Rev. B, 2011, 84(17) : 174439.
  • 8Marti X, Skmnryev V, Ferrater C, Garcia-Cuenca M V, Varela M, Sanchez F, Fontcuberta J. Emergence of ferromagnetism in antiferromagnetic TbMnO3 by epitaxial strain [ J ]. Appl. Phys. Lett., 2010, 96 (22) : 222505.
  • 9Shuvaev A M, Travkin V D, Ivanov V Y, Mukhin A A, Pimenov A. Evidence for e]ectroaetive excitation of the spin cycloid in TbMnO3 [ J]. Phys. Rev. Lett., 2010, 104(9) : 097202.
  • 10Walker H C, Fabrizi F, Paolasini L, de Bergevin F, Herrcro-Martin J, Boothroyd A T, Prabhakaran D, Mc- Morrow D F. Femtoscale magnetically induced lattice distortions in multiferroic TbMnO3 [ J]. Science, 2011, 333(6047) : 1273.

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