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Surface magnetism of strontium titanate

机译:钛酸锶的表面磁性

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SrTiO3 plays a central role in oxide electronics. It is the substrate of choice for functional oxide heterostructures based on perovskite-structure thin-film stacks, and its surface or interface with a polar oxide such as LaAlO3 can become a 2D conductor because of electronic reconstruction or the presence of oxygen defects. Inconsistent reports of magnetic order in SrTiO3 abound in the literature. Here, we report a systematic experimental study aimed at establishing how and when SrTiO3 can develop a magnetic moment at room temperature. Polished (1 0 0), (1 1 0) or (1 1 1) crystal slices from four different suppliers are characterized before and after vacuum annealing at 750 degrees C, both in single-crystal and powdered form. Impurity content is analysed at the surface and in the bulk. Besides the underlying intrinsic diamagnetism of SrTiO3, magnetic signals are of three types-a Curie law susceptibility due to dilute magnetic impurities at the ppm level, a hysteretic temperature-dependent ferromagnetic impurity contribution, and a practically anhysteretic defect-related temperature-independent component that saturates in about 200 mT. The latter component is intrinsic. It is often the largest, reaching 10 mu(B) nm(-2) of the surface area or more and dominating the magnetic response in low fields at room temperature. It is associated with defects near the surface, and can be destroyed by treatment with Tiron (C6H4Na2O8S2), an electron donor molecule that forms a strong complex with titanium at the surface. The origin of this unusual high-temperature ferromagnetic-like response is discussed.
机译:SRTIO3在氧化物电子器件中起着核心作用。它是基于Perovskite结构薄膜堆叠的功能氧化物异质结构的选择基材,其表面或与诸如Laalo3的极性氧化物的界面可以成为2D导体,因为电子重建或氧缺陷的存在。在文献中,SRTIO3中磁场的不一致报告比比皆是。在这里,我们报告了一个系统的实验研究,旨在建立SRTIO3在室温下发育磁矩。来自四种不同供应商的抛光(1 0 0),(110)或(1 1 1)晶体切片在750℃下以单晶和粉末形式进行真空退火之前和之后。在表面和散装中分析杂质含量。除了SRTIO3的潜在的固有反磁场外,磁性信号还具有三种类型的居里法易感性,因为PPM水平稀释磁性杂质,滞后温度依赖性铁磁性杂质贡献,以及实际的中间口腔缺陷相关的温度无关组分饱和约200吨。后一种组分是内在的。它通常是表面积或更大的最大,达到10μm(b)nm(-2),并且在室温下占低场的磁响应。它与表面附近的缺陷有关,并且可以通过用Tiron(C6H4NA2O8S2)的处理,电子给体分子与表面形成强络合物的缺陷有关。讨论了这种不寻常的高温铁磁样响应的起源。

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