Hubei Collaborative Innovation Centre for Advanced Organic Chemical Materials, Key Laboratory of Green Preparation and Application for Materials, Ministry of Education, Department of Materials Science and Engineering, Hubei University , Wuhan 430062, P. R. China.
Department of Materials Science and Engineering and Materials Research Laboratory, University of Illinois , Urbana-Champaign, Urbana, Illinois 61801, United States.
Nano Lett. 2015 Oct 14;15(10):6506-13. doi: 10.1021/acs.nanolett.5b02031. Epub 2015 Sep 1.
There is growing evidence that domain walls in ferroics can possess emergent properties that are absent in the bulk. For example, 180° 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° 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° stripe domains with {112̅} 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° stripe nanodomains to 71° 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° domain walls and an absence of exchange bias in heterostructures based on BiFeO3 with 71° domain walls; suggesting that the 180° domain walls could be the possible source for pinned uncompensated spins that give rise to exchange bias. This is further confirmed by X-ray circular magnetic dichroism studies, which demonstrate that films with predominantly 180° domain walls have larger magnetization than those with primarily 71° domain walls. Our results could be useful to extract the structure of domain walls and to explore domain wall functionalities in BiFeO3.
越来越多的证据表明,铁电体中的畴壁具有在体相中不存在的新兴特性。例如,铁电-反铁磁 BiFeO3 中的 180°铁电畴壁特别有趣,因为它们被预测具有一系列有趣的行为,包括电子传导和增强的磁化。然而,迄今为止,尚未报道具有这种畴结构的有序阵列。在这里,我们报告了在 orthorhombic GdScO3 (010)O 衬底上生长的 (110)取向 BiFeO3 薄膜中观察到的 180°条纹纳米畴及其对与金属铁磁体的交换耦合的影响。在厚度<32nm 的薄膜中观察到纳米级铁电 180°条纹畴,畴壁为{112̅}。随着薄膜厚度的增加,我们观察到畴结构从由去极化场驱动的 180°条纹纳米畴到由弹性能决定的 71°铁弹畴的转变。这些 180°畴壁(由于与壁能相关的强各向异性的缺乏,通常在性质上是圆柱形或蜿蜒形)被发现是高度有序的。对 Co0.9Fe0.1/BiFeO3 异质结构的进一步研究表明,在具有 180°畴壁的 BiFeO3 异质结构中存在交换偏置和交换增强,而在具有 71°畴壁的 BiFeO3 异质结构中不存在交换偏置;这表明 180°畴壁可能是导致交换偏置的未补偿自旋的固定源。X 射线圆二色性研究进一步证实了这一点,该研究表明,具有主要 180°畴壁的薄膜具有比主要具有 71°畴壁的薄膜更大的磁化强度。我们的结果可用于提取畴壁的结构并探索 BiFeO3 中的畴壁功能。