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Superparamagnetic ground state of CoFeB/MgO magnetic tunnel junction with dual-barrier

机译:CoFeB / MgO双势垒磁性隧道结的超顺磁性基态

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CoFeB/MgO-based magnetic tunnel junctions (MTJs) have considerable potential in magnetic random access memory (MRAM), thanks to their tunable perpendicular magnetic anisotropy (PMA). We found significant reduction of dead-layer by inserting additional MgO into the MTJ structure. Interface, electronic and transport characterizations were utilized to approach the modified magnetic properties driven by the dual-MgO structure in this work. The dual-MgO structure appeared to hinder boron (B) diffusion into the metallic layer and prevent capping-layer (Ta) penetration across the interface. This suppressed the dead-layer effect and promoted overall magnetization despite PMA degradation. A robust BOx phase that formed within the dual-MgO structure presented a superparamagnetic ground state. In the single-MgO structure, any reduction in the thickness of the CoFeB promoted PMA, albeit at the cost of spin-polarization. The dual-MgO structure could restore spin-polarization by preferentially populating spin electrons into Fe/Co minority states. X-ray magnetic spectroscopy and anomalous Hall effect suggest that, the dual-MgO differs from the single-MgO with a favorable longitudinal polarized spin-channel. This makes the dual-MgO structure applicable to applications requiring in-plane rather than out-of-plane sensing.
机译:基于CoFeB / MgO的磁性隧道结(MTJ)由于具有可调的垂直磁各向异性(PMA),因此在磁性随机存取存储器(MRAM)中具有巨大的潜力。我们发现通过将额外的MgO插入MTJ结构中可以显着减少死层。在这项工作中,利用界面,电子和传输特性来研究由双MgO结构驱动的改性磁性能。双重MgO结构似乎阻止了硼(B)扩散到金属层中,并阻止了覆盖层(Ta)穿透界面。尽管PMA降解,这抑制了死层效应并促进了整体磁化。在双MgO结构内形成的稳健的BOx相呈现超顺磁性基态。在单MgO结构中,CoFeB厚度的任何减小都会促进PMA,尽管是以自旋极化为代价的。双重MgO结构可以通过优先将自旋电子组装成Fe / Co少数态来恢复自旋极化。 X射线电磁光谱和异常霍尔效应表明,双MgO不同于单MgO,具有良好的纵向极化自旋通道。这使得双MgO结构适用于需要平面内感测而不是平面外感测的应用。

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