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Room temperature ferroelectric and magnetic investigations and detailed phase analysis of Aurivillius phase Bi 5Ti 3Fe 0.7Co 0.3O 15 thin films

机译:Aurivillius相Bi 5Ti 3Fe 0.7Co 0.3O 15薄膜的室温铁电和磁研究以及详细的相分析

摘要

Aurivillius phase Bi 5Ti 3Fe 0.7Co 0.3O 15 (BTF7C3O) thin films on α-quartz substrates were fabricated by a chemical solution deposition method and the room temperature ferroelectric and magnetic properties of this candidate multiferroic were compared with those of thin films of Mn 3 substituted, Bi 5Ti 3Fe 0.7Mn 0.3O 15 (BTF7M3O). Vertical and lateral piezoresponse force microscopy (PFM) measurements of the films conclusively demonstrate that BTF7C3O and BTF7M3O thin films are piezoelectric and ferroelectric at room temperature, with the major polarization vector in the lateral plane of the films. No net magnetization was observed for the in-plane superconducting quantum interference device (SQUID) magnetometry measurements of BTF7M3O thin films. In contrast, SQUID measurements of the BTF7C3O films clearly demonstrated ferromagnetic behavior, with a remanent magnetization, B r, of 6.37 emu/cm 3 (or 804 memu/g), remanent moment 4.99 × 10 -5 emu. The BTF7C3O films were scrutinized by x-ray diffraction, high resolution transmission electron microscopy, scanning transmission electron microscopy, and energy dispersive x-ray analysis mapping to assess the prospect of the observed multiferroic properties being intrinsic to the main phase. The results of extensive micro-structural phase analysis demonstrated that the BTF7C3O films comprised of a 3.95 Fe/Co-rich spinel phase, likely CoFe 2 - xTi xO 4, which would account for the observed magnetic moment in the films. Additionally, x-ray magnetic circular dichroism photoemission electron microscopy (XMCD-PEEM) imaging confirmed that the majority of magnetic response arises from the Fe sites of Fe/Co-rich spinel phase inclusions. While the magnetic contribution from the main phase could not be determined by the XMCD-PEEM images, these data however imply that the Bi 5Ti 3Fe 0.7Co 0.3O 15 thin films are likely not single phase multiferroics at room temperature. The PFM results presented demonstrate that the naturally 2D nanostructured Bi 5Ti 3Fe 0.7Co 0.3O 15 phase is a novel ferroelectric and has potential commercial applications in high temperature piezoelectric and ferroelectric memory technologies. The implications for the conclusive demonstration of ferroelectric and ferromagnetic properties in single-phase materials of this type are discussed.
机译:采用化学溶液沉积法在α-石英衬底上制备了Aurivillius相Bi 5Ti 3Fe 0.7Co 0.3O 15(BTF7C3O)薄膜,并将该候选多铁性金属的室温铁电和磁性与Mn 3薄膜的室温铁电和磁性进行了比较取代的Bi 5Ti 3Fe 0.7Mn 0.3O 15(BTF7M3O)。薄膜的垂直和横向压电响应力显微镜(PFM)测量最终证明BTF7C3O和BTF7M3O薄膜在室温下为压电和铁电薄膜,主要极化矢量在薄膜的侧面。对于BTF7M3O薄膜的面内超导量子干涉仪(SQUID)磁力测量,未观察到净磁化强度。相反,对BTF7C3O膜的SQUID测量清楚地表明了铁磁行为,剩余磁化强度B r为6.37 emu / cm 3(或804 memu / g),剩余磁矩为4.99×10 -5 emu。 BTF7C3O膜通过X射线衍射,高分辨率透射电子显微镜,扫描透射电子显微镜和能量色散X射线分析图进行检查,以评估观察到的多铁性是主相固有的前景。广泛的微观结构相分析的结果表明,BTF7C3O膜由3.95的富Fe / Co尖晶石相组成,可能是CoFe 2-xTi xO 4,这可以解释膜中观察到的磁矩。此外,X射线磁性圆二色性发射电子显微镜(XMCD-PEEM)成像证实,大多数磁响应来自富Fe / Co的尖晶石相夹杂物中的Fe部位。尽管不能通过XMCD-PEEM图像确定主相的磁性贡献,但是这些数据表明Bi 5Ti 3Fe 0.7Co 0.3O 15薄膜在室温下可能不是单相多铁性体。给出的PFM结果表明,天然2D纳米结构的Bi 5Ti 3Fe 0.7Co 0.3O 15相是一种新型铁电体,在高温压电和铁电存储技术中具有潜在的商业应用。讨论了这种单相材料中铁电和铁磁特性的结论性证明的含义。

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