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Magnetic multilayer edges in Bernal-stacked hexagonal boron nitride

机译:跨越六边形氮化物中的磁性多层边缘

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摘要

Single-layer h-BN is known to have edges with unique magnetism; however, in the commonly fabricated multilayer AA'-h-BN, edge relaxations occur that create interlayer bonds and eliminate the unpaired electrons at the edge. Recently, a robust method of growing the unconventional Bernal-stacked h-BN (AB-h-BN) has been reported. Here, we use theoretical approaches to investigate the nitrogen-terminated zigzag edges in AB-h-BN that can be formed in a controlled fashion using a high-energy electron beam. We find that these "open" edges remain intact in bilayer and multilayer AB-h-BN, enabling researchers potentially to investigate these edge states experimentally. We also investigate the thermodynamics of the spin configurations at the edge by constructing a lattice model that is based on parameters extracted from a set of first-principles calculations. We find that the edge spins in neighboring layers interact very weakly, resulting in a sequence of independent spin chains in multilayer samples. By solving this model using Monte Carlo simulations, we can determine nm-scale correlation lengths at liquid-N_2 temperatures and lower. At low temperatures, these edges may be utilized in magnetoresistance and spintronics applications.
机译:已知单层H-BN具有独特磁性的边缘;然而,在通常制造的多层AA'-H-BN中,发生边缘松弛,以产生层间键合并消除边缘处的未配对电子。最近,已经报道了一种生长非传统伯尼堆叠的H-BN(AB-H-BN)的鲁棒方法。这里,我们使用理论方法来研究AB-H-BN中的氮气终止的锯齿形边缘,其可以使用高能电子束以受控方式形成。我们发现这些“开放”边缘在双层和多层AB-H-BN中保持完整,使研究人员能够通过实验研究这些边缘状态。我们还通过构建基于从一组第一原理计算中提取的参数的晶格模型来研究边缘处的自旋配置的热力学。我们发现相邻层中的边缘旋转非常弱,导致多层样品中的一系列独立的旋转链。通过使用Monte Carlo仿真解决该模型,我们可以在液体-N_2温度下确定NM级相关长度和更低。在低温下,这些边缘可用于磁阻和熔点应用中。

著录项

  • 来源
    《Physical review》 |2020年第15期|155419.1-155419.9|共9页
  • 作者

    Mehmet Dogan; Marvin L. Cohen;

  • 作者单位

    Department of Physics University of California Berkeley California 94720 USA and Materials Sciences Division Lawrence Berkeley National Laboratory Berkeley California 94720 USA;

    Department of Physics University of California Berkeley California 94720 USA and Materials Sciences Division Lawrence Berkeley National Laboratory Berkeley California 94720 USA;

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