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180 degrees Ferroelectric Stripe Nanodomains in BiFeO3 Thin Films

机译:BiFeO3薄膜中的180度铁电条纹纳米域

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There is growing evidence that domain walls in ferroics can possess emergent properties that are absent in the bulk. For example, 180 degrees ferroelectric domain walls in the ferroelectric-antiferromagnetic BiFeO3 are particularly interesting because they have been predicted to possess a range of intriguing behaviors, including electronic conduction and enhanced magnetization. To date, however, ordered arrays of such domain structures have not been reported. Here, we report the observation of 180 degrees stripe nanodomains in (110)-oriented BiFeO3 thin films grown on orthorhombic GdScO3 (010)(O) substrates and their impact on exchange coupling to metallic ferromagnets. Nanoscale ferroelectric 180 degrees stripe domains with {11 (2) over bar} domain walls were observed in films <32 nm thick. With increasing film thickness, we observed a domain structure crossover from the depolarization field-driven 180 degrees stripe nanodomains to 71 degrees ferroelastic domains determined by the elastic energy. These 180 domain walls (which are typically cylindrical or meandering in nature due to a lack of strong anisotropy associated with the energy of such walls) are found to be highly ordered. Additional studies of Co0.9Fe0.1/BiFeO3 heterostructures reveal exchange bias and exchange enhancement in heterostructures based on BiFeO3 with 180 degrees domain walls and an absence of exchange bias in heterostructures based on BiFeO3 with 71 degrees domain walls; suggesting that the 180 degrees domain walls could be the possible source for pinned uncompensated spins that give rise to exchange bias. This is further confirmed by Xray circular magnetic dichroism studies, which demonstrate that films with predominantly 180 degrees domain walls have larger magnetization than those with primarily 71 degrees domain walls. Our results could be useful to extract the structure of domain walls and to explore domain wall functionalities in BiFeO3.
机译:越来越多的证据表明,铁素体中的畴壁可以具有整体中不存在的新兴属性。例如,铁电-反铁磁BiFeO3中的180度铁电畴壁特别有趣,因为据预测它们具有一系列有趣的行为,包括电子传导和增强的磁化强度。然而,迄今为止,尚未报道这种域结构的有序阵列。在这里,我们报告在正交晶体GdScO3(010)(O)衬底上生长的(110)定向BiFeO3薄膜中180度条带纳米域的观察及其对金属铁磁体交换耦合的影响。在厚度小于32 nm的薄膜中观察到纳米级铁电180度条纹区域,其在{bar}域上具有{11(2)。随着膜厚度的增加,我们观察到了由去极化场驱动的180度条纹纳米域到71度铁弹性域(由弹性能决定)的域结构交叉。发现这180个畴壁(由于缺乏与这种壁的能量相关的强各向异性而通常为圆柱形或曲折的)是高度有序的。对Co0.9Fe0.1 / BiFeO3异质结构的进一步研究表明,在具有180度畴壁的BiFeO3的异质结构中,交换偏置和交换增强;在具有71度畴壁的BiFeO3的异质结构中不存在交换偏置;这表明180度磁畴壁可能是固定的,未补偿的自旋(可能引起交换偏差)的来源。 X射线圆磁二向色性研究进一步证实了这一点,该研究表明,主要具有180度畴壁的膜比主要具有71度畴壁的膜具有更大的磁化强度。我们的结果可能对提取畴壁的结构和探索BiFeO3中的畴壁功能有用。

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