Počet záznamů: 1  

Nanodomains and nanometer-scale disorder in multiferroic bismuth ferrite single crystals

  1. 1.
    SYSNO ASEP0451367
    Druh ASEPJ - Článek v odborném periodiku
    Zařazení RIVJ - Článek v odborném periodiku
    Poddruh JČlánek ve WOS
    NázevNanodomains and nanometer-scale disorder in multiferroic bismuth ferrite single crystals
    Tvůrce(i) Jia, C.L. (DE)
    Jin, L. (DE)
    Wang, D. (CN)
    Mi, S.B. (CN)
    Alexe, M. (GB)
    Hesse, D. (DE)
    Reichlová, Helena (FZU-D) RID, ORCID
    Martí, Xavier (FZU-D) RID, ORCID
    Bellaiche, L. (US)
    Urban, K.W. (DE)
    Zdroj.dok.Acta Materialia. - : Elsevier - ISSN 1359-6454
    Roč. 82, Jan (2015), s. 356-368
    Poč.str.13 s.
    Jazyk dok.eng - angličtina
    Země vyd.GB - Velká Británie
    Klíč. slovabismuth ferrite ; crystal growth ; high-resolution electron microscopy ; atomic structure ; first-principles calculations
    Vědní obor RIVBM - Fyzika pevných látek a magnetismus
    Institucionální podporaFZU-D - RVO:68378271
    UT WOS000347017800034
    EID SCOPUS84908288122
    DOI10.1016/j.actamat.2014.09.003
    AnotaceWe report on an investigation of state-of-the-art flux-grown multiferroic bismuth ferrite (BiFeO3; BFO) single crystals by transmission electron microscopy and electron diffraction. The crystals were pre-characterized by piezoresponse force microscopy, electrical resistance and superconducting quantum interference device magnetization measurements. The structurally highly perfect crystals show a ferroelectric stripe domain structure characterized by a domain width of 55 nm. Inside these domains an additional contiguous nanodomain substructure occurs, consisting of 180° related domains, giving rise to satellite reflections at View the MathML source121212-type positions along View the MathML source 110 directions in the electron diffraction pattern corresponding to a characteristic length in real space of 15.5 nm. Furthermore, we present the first atomic-resolution study on the short-range order by aberration-corrected transmission electron microscopy in which all atoms including oxygen are imaged directly. By measuring the –Fe–O–Fe– atom topology, bond angles and atomic distances we derive the electrical dipole moment as well as the magnitude of the magnetic moment on the unit-cell level. The results evidence substantial atomic- to nano-scale disorder. Both the nanodomain substructure as well as the disorder should affect the subtle magnetoelectric interactions in this material and thereby impede the formation of long-range cycloidal spin ordering which up to now was considered an intrinsic feature of the magnetic properties of BiFeO3 single crystals. By Monte Carlo simulation on the basis of a state-of-the-art effective Hamiltonian we scrutinize certain aspects of the phase formation behavior in the BFO system forming the background of single-crystal growth. This study reveals a very sluggish phase evolution behavior, which should make it invariably difficult to obtain structurally fully equilibrated single crystals.
    PracovištěFyzikální ústav
    KontaktKristina Potocká, potocka@fzu.cz, Tel.: 220 318 579
    Rok sběru2016
Počet záznamů: 1  

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