Vrejoiu Ionela, Morelli Alessio, Biggemann Daniel, Pippel Eckhard
Max Planck Institute of Microstructure Physics, Halle, Germany.
Nano Rev. 2011;2. doi: 10.3402/nano.v2i0.7364. Epub 2011 Oct 4.
Epitaxial heterostructures combining ferroelectric (FE) and ferromagnetic (FiM) oxides are a possible route to explore coupling mechanisms between the two independent order parameters, polarization and magnetization of the component phases. We report on the fabrication and properties of arrays of hybrid epitaxial nanostructures of FiM NiFe(2)O(4) (NFO) and FE PbZr(0.52)Ti(0.48)O(3) or PbZr(0.2)Ti(0.8)O(3), with large range order and lateral dimensions from 200 nm to 1 micron.
The structures were fabricated by pulsed-laser deposition. High resolution transmission electron microscopy and high angle annular dark-field scanning transmission electron microscopy were employed to investigate the microstructure and the epitaxial growth of the structures. Room temperature ferroelectric and ferrimagnetic domains of the heterostructures were imaged by piezoresponse force microscopy (PFM) and magnetic force microscopy (MFM), respectively.
PFM and MFM investigations proved that the hybrid epitaxial nanostructures show ferroelectric and magnetic order at room temperature. Dielectric effects occurring after repeated switching of the polarization in large planar capacitors, comprising ferrimagnetic NiFe2O4 dots embedded in ferroelectric PbZr0.52Ti0.48O3 matrix, were studied.
These hybrid multiferroic structures with clean and well defined epitaxial interfaces hold promise for reliable investigations of magnetoelectric coupling between the ferrimagnetic / magnetostrictive and ferroelectric / piezoelectric phases.
结合铁电(FE)和铁磁(FiM)氧化物的外延异质结构是探索两个独立序参量(即组成相的极化和磁化)之间耦合机制的一条可能途径。我们报道了FiM NiFe₂O₄(NFO)与FE PbZr₀.₅₂Ti₀.₄₈O₃或PbZr₀.₂Ti₀.₈O₃的混合外延纳米结构阵列的制备及其特性,这些阵列具有大范围有序性,横向尺寸从200纳米到1微米。
通过脉冲激光沉积制备结构。采用高分辨率透射电子显微镜和高角度环形暗场扫描透射电子显微镜研究结构的微观结构和外延生长。分别通过压电力显微镜(PFM)和磁力显微镜(MFM)对异质结构的室温铁电和亚铁磁畴进行成像。
PFM和MFM研究证明,混合外延纳米结构在室温下呈现铁电和磁有序。研究了在包含嵌入铁电PbZr₀.₅₂Ti₀.₄₈O₃基体中的亚铁磁NiFe₂O₄点的大型平面电容器中,极化反复切换后出现的介电效应。
这些具有清晰且定义明确的外延界面的混合多铁性结构有望用于可靠地研究亚铁磁/磁致伸缩相与铁电/压电相之间的磁电耦合。