Institut de Ciència de Materials de Barcelona-CSIC, Campus de la UAB, 08193 Bellaterra, Spain.
ACS Nano. 2010 Aug 24;4(8):4955-61. doi: 10.1021/nn101546r.
We demonstrate that epitaxial strain engineering is an efficient method to manipulate the ferromagnetic and ferroelectric properties in BiFeO(3)-CoFe(2)O(4) columnar nanocomposites. On one hand, the magnetic anisotropy of CoFe(2)O(4) is totally tunable from parallel to perpendicular controlling the CoFe(2)O(4) strain with proper combinations of substrate and ferroelectric phase. On the other hand, the selection of the used substrate allows the growth of the rhombohedral bulk phase of BiFeO(3) or the metastable nearly tetragonal one, which implies a rotation of the ferroelectric polar axis from [111] to close to the [001] direction. Remarkably, epitaxy is preserved and interfaces are semicoherent even when lattice mismatch is above 10%. The broad range of sustainable mismatch suggests new opportunities to assemble epitaxial nanostructures combining highly dissimilar materials with distinct functionalities.
我们证明了外延应变工程是一种有效的方法,可以在 BiFeO(3)-CoFe(2)O(4)柱状纳米复合材料中操纵铁磁和铁电性质。一方面,通过适当的衬底和铁电相组合来控制 CoFe(2)O(4)的应变,CoFe(2)O(4)的磁各向异性可以从平行完全调谐到垂直。另一方面,选择使用的衬底可以使 BiFeO(3)生长为菱面体块状相或亚稳的近四方相,这意味着铁电极化轴从[111]方向旋转到接近[001]方向。值得注意的是,即使晶格失配超过 10%,外延也得以保留,界面仍为半相干。这种大范围的可持续失配为组装具有不同功能的高度不同的材料的外延纳米结构提供了新的机会。