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Direct-Write of Nanoscale Domains with Tunable Metamagnetic Order in FeRh Thin Films

机译:在FERH薄膜中直接写入纳米级结构域,可调谐元磁性订单

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We have directly written nanoscale patterns of magnetic ordering in FeRh films using focused helium-ion beam irradiation. By varying the dose, we pattern arrays with metamagnetic transition temperatures that range from the asgrown film temperature to below room temperature. We employ transmission electron microscopy, X-ray diffraction, and temperature-dependent transport measurements to characterize the as-grown film, and magneto-optic Kerr effect imaging to quantify the He+ irradiation-induced changes to the magnetic order. Moreover, we demonstrate temperature-dependent optical microscopy and conductive atomic force microscopy as indirect probes of the metamagnetic transition that are sensitive to the differences in dielectric properties and electrical conductivity, respectively, of FeRh in the antiferromagnetic (AF) and ferromagnetic (FM) states. Using density functional theory, we quantify strain- and defect-induced changes in spin-flip energy to understand their influence on the metamagnetic transition temperature. This work holds promise for in-plane AF-FM spintronic devices, by reducing the need for multiple patterning steps or different materials, and potentially eliminating interfacial polarization losses due to cross material interfacial spin scattering.
机译:我们使用聚焦氦离子束辐照直接在FeRh薄膜中书写了磁性有序的纳米级图案。通过改变剂量,我们用亚磁转变温度(从薄膜生长温度到低于室温)来设计阵列。我们使用透射电子显微镜、X射线衍射和温度相关的输运测量来表征所生长的薄膜,并使用磁光克尔效应成像来量化He+辐照引起的磁序变化。此外,我们还证明了温度相关光学显微镜和导电原子力显微镜是亚磁转变的间接探针,它们分别对FeRh在反铁磁(AF)和铁磁(FM)状态下的介电性质和导电性差异敏感。利用密度泛函理论,我们量化了应变和缺陷引起的自旋翻转能量变化,以了解它们对磁相变温度的影响。这项工作为平面内AF-FM自旋电子学器件带来了希望,因为它减少了对多个图案步骤或不同材料的需求,并潜在地消除了由于跨材料界面自旋散射引起的界面极化损失。

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