Tao L L, Zhang Qin, Li Huinan, Zhao Hong Jian, Wang Xianjie, Song Bo, Tsymbal Evgeny Y, Bellaiche Laurent
School of Physics, <a href="https://ror.org/01yqg2h08">Harbin Institute of Technology</a>, Harbin 150001, China.
Key Laboratory of Material Simulation Methods and Software of Ministry of Education, College of Physics, <a href="https://ror.org/00js3aw79">Jilin University</a>, Changchun 130012, China.
Phys Rev Lett. 2024 Aug 30;133(9):096803. doi: 10.1103/PhysRevLett.133.096803.
The efficient detection of the Néel vector in antiferromagnets is one of the prerequisites toward antiferromagnetic spintronic devices and remains a challenging problem. Here, we propose that the layer Hall effect can be used to efficiently detect the Néel vector in centrosymmetric magnetoelectric antiferromagnets. Thanks to the robust surface magnetization of magnetoelectric antiferromagnets, the combination of sizable exchange field and an applied electric field results in the layer-locked spin-polarized band edges. Moreover, the Berry curvature can be engineered efficiently by an electric field, which consequently gives rise to the layer-locked Berry curvature responsible for the layer Hall effect. Importantly, it is demonstrated that the layer Hall conductivity strongly depends on the Néel vector orientation and exhibits rich electromagnetic responses, which can be used to detect the Néel vector reversal. Based on density functional theory calculations, we exemplify those phenomena in the prototypical Cr_{2}O_{3} compound. A complete list of the magnetic point groups sustaining the layer Hall effect is presented, aiding the search for realistic materials. Our work proposes a novel approach to detect the Néel vector and holds great promise for antiferromagnetic spintronic applications.
在反铁磁体中有效检测奈尔矢量是实现反铁磁自旋电子器件的前提条件之一,并且仍然是一个具有挑战性的问题。在此,我们提出层霍尔效应可用于在中心对称的磁电反铁磁体中有效检测奈尔矢量。得益于磁电反铁磁体强大的表面磁化强度,可观的交换场与外加电场相结合会导致层锁定的自旋极化能带边缘。此外,通过电场可有效调控贝里曲率,进而产生导致层霍尔效应的层锁定贝里曲率。重要的是,已证明层霍尔电导率强烈依赖于奈尔矢量方向并呈现出丰富的电磁响应,这可用于检测奈尔矢量反转。基于密度泛函理论计算,我们在典型的Cr₂O₃化合物中例证了这些现象。给出了支持层霍尔效应的磁点群的完整列表,有助于寻找实际材料。我们的工作提出了一种检测奈尔矢量的新方法,在反铁磁自旋电子应用方面具有巨大潜力。