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外延 Bi5Ti3FeO15-CoFe2O4 柱-矩阵多铁性纳米结构。

Epitaxial Bi5Ti3FeO15-CoFe2O4 pillar-matrix multiferroic nanostructures.

机构信息

Materials and Structures Laboratory, Tokyo Institute of Technology , 4259 Nagatsuta, Midori-ku Yokohama 226-8503, Japan.

出版信息

ACS Nano. 2013 Dec 23;7(12):11079-86. doi: 10.1021/nn404779x. Epub 2013 Nov 12.

Abstract

Epitaxial self-assembled ferro(i)magnetic spinel (CoFe2O4 (CFO)) and ferroelectric bismuth layered perovskite (Bi5Ti3FeO15 (BTFO)) pillar-matrix nanostructures are demonstrated on (001) single-crystalline strontium titanate substrates. The CFO remains embedded in the BTFO matrix as vertical pillars (∼50 nm in diameter) up to a volume fraction of 50%. Piezoresponse force microscopy experiments evidence a weak out-of-plane and a strong in-plane ferroelectricity in the BTFO phase, despite previously reported paraelectricity along the c-axis in a pure BTFO film. Phenomenological Landau-Ginzburg-Devonshire-based thermodynamic computations show that the radial stress induced by the CFO nanopillars can influence these ferroelectric phases, thus signifying the importance of the nanopillars. The CFO pillars demonstrate robust ferromagnetic hysteresis loops with little degradation in the saturation magnetization (ca. 4 μB/f.u.). Thus BTFO-CFO nanocomposites show significant promise as a lead-free magnetoelectric materials system.

摘要

在(001)单晶钛酸锶衬底上,展示了外延自组装铁磁性尖晶石(CoFe2O4(CFO))和铁电铋层状钙钛矿(Bi5Ti3FeO15(BTFO))柱-矩阵纳米结构。CFO 仍然嵌入 BTFO 矩阵中,形成垂直的柱子(直径约为 50nm),体积分数高达 50%。压电力显微镜实验证明了 BTFO 相具有较弱的面外和较强的面内铁电性,尽管在纯 BTFO 薄膜中曾报道沿 c 轴的顺电性。基于朗道-金兹堡-德万希尔的唯象热力学计算表明,CFO 纳米柱产生的径向应力会影响这些铁电相,从而凸显了纳米柱的重要性。CFO 柱子表现出稳健的铁磁磁滞回线,饱和磁化强度几乎没有降低(约为 4μB/f.u.)。因此,BTFO-CFO 纳米复合材料有望成为无铅磁电材料系统。

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