论文标题

磁电流物理学的指纹在磁电响应中旋转$ 1/2 $磁铁ba $ _2 $ cuge $ _2 $ o $ $ _7 $

Fingerprints of spin-current physics on magnetoelectric response in the spin-$1/2$ magnet Ba$_2$CuGe$_2$O$_7$

论文作者

Ono, Ryota, Nikolaev, Sergey, Solovyev, Igor

论文摘要

Kramers脱落的结果,单位各向异性消失了自旋-1/2。我们认为,相似的特性对于磁诱导的电偏振p具有相似的特性,这仅取决于键中旋转的相对方向,而不应取决于每个单个旋转的方向。因此,对于绝缘多效化合物,P可以用成对的各向同性,抗对称和各向异性贡献进行分解,可以用与Spin Hililtonian的类比,在superexchange(SE)理论的框架中严格得出。 SE理论还使我们能够识别出每个贡献背后的微观机制。最具争议和有趣的是抗对称或旋转机制。在这项工作中,我们建议BA2Cuge2O7的有争议的磁电(ME)性能仅通过自旋机制来解释,而其他贡献则很小,要么被对称性禁止。首先,我们明确显示了循环自旋顺序如何诱导垂直于XY平面的方向的实验观察到的P,这可以通过在平面外键中运行的自旋机制自然解释。然后,我们揭幕了以前忽略了我的效果,垂直于平面的磁场的应用不仅会导致不一致的旋转过渡,而且由于在该平面内的相邻键中运行的旋转机制,因此将P倒入了平面。在这两种情况下,P可以通过在XY平面中旋转自旋图案来控制P的大小和方向。我们的分析基于现实的自旋模型,该模型是从第一原理计算得出的,并补充了用于构建局部Wannier函数的新算法,遵守BA2Cuge2O7的晶体学对称性。

The single-site anisotropy vanishes for the spin-1/2 as a consequence of Kramers degeneracy. We argue that similar property holds for the magnetically induced electric polarization P, which should depend only on the relative orientation of spins in the bonds but not on the direction of each individual spin. Thus, for insulating multiferroic compounds, P can be decomposed in terms of pairwise isotropic, antisymmetric, and anisotropic contributions, which can be rigorously derived in the framework of the superexchange (SE) theory, in an analogy with the spin Hamiltonian. The SE theory also allows us to identify the microscopic mechanism, which stands behind each contribution. The most controversial and intriguing one is antisymmetric or spin-current mechanism. In this work, we propose that the disputed magnetoelectric (ME) properties of Ba2CuGe2O7 can be explained solely by the spin-current mechanism, while other contributions are either small or forbidden by symmetry. First we explicitly show how the cycloidal spin order induces the experimentally observed P in the direction perpendicular to the xy plane, which can be naturally explained by the spin-current mechanism operating in the out-of-plane bonds. Then, we unveil previously overlooked ME effect, where the application of the magnetic field perpendicular to the plane not only causes the incommensurate-commensurate transition, but also flips P into the plane due to the spin-current mechanism operating in the neighboring bonds within this plane. In both cases, the magnitude and direction of P can be controlled by rotating the spin pattern in the xy plane. Our analysis is based on a realistic spin model, which was rigorously derived from the first-principles calculations and supplemented with the new algorithm for the construction of localized Wannier functions obeying the crystallographic symmetry of Ba2CuGe2O7.

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