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Magnetic anisotropy and ferroelectric-driven magnetic phase transition in monolayer Cr2Ge2Te6

机译:磁各向异性和ferroelectric-driven在单层Cr2Ge2Te6磁相变

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摘要

Monolayer Cr2Ge2Te6 (ML-CGT) has attracted broad interest due to its novel electronic and magnetic properties. However, there are still controversies on the origin of its intrinsic magnetism. Here, by exploring the electronic and magnetic properties of ML-CGT, we find that the magnetic shape anisotropy (MSA) is vital for establishing the long-range ferromagnetism, except for the contribution from magnetocrystalline anisotropy energy (MCA). Electronic band analysis, combined with atomic- and orbital-resolved magnetic anisotropy from a second-order perturbation theory, further reveals that the MCA of ML-CGT is mainly originated from hybridized Te-py and -pz orbitals. The MSA from magnetic Cr atoms in ML-CGT is larger than MCA, resulting in an in-plane magnetic anisotropy. Noticeably, by constructing a heterostructure (HTS) with ferroelectric Sc2CO2, CGT undergoes an in-plane to out-of-plane spin reorientation via ferroelectric polarization switching, accompanied with an electronic property transition from semiconductor to half-metal. The Curie temperature of CGT/Sc2CO2 HTS can be enhanced to 92.4 K under the ferroelectric polarization, which is much higher than that of pristine ML-CGT (34.7 K). These results not only clarify the contradiction of magnetic mechanism of ML-CGT in previous experimental and theoretical works, but also open the door for realizing nonvolatile magnetic memory devices based on a multifunctional ferromagnetic/ferroelectric HTS.
机译:单层Cr2Ge2Te6 (ML-CGT)吸引了广泛的由于其新颖的电子和磁感兴趣属性。争议在其内在的起源磁性。ML-CGT磁性,我们发现磁形状各向异性(MSA)是至关重要的建立远程铁磁性,除了贡献磁晶各向异性能(MCA)。电子带的分析,结合原子-并从一个orbital-resolved磁各向异性二阶微扰理论,进一步揭示了的MCA ML-CGT主要源于杂化Te-py和pz轨道。磁铬原子ML-CGT大于MCA,导致一个面内磁各向异性。值得注意的是,通过构造一个异质结构(高温超导)与铁电Sc2CO2资本利得经历平面与平面外重新定位通过旋转铁电极化切换、陪同与电子属性转变半导体half-metal。温度及售卖/ Sc2CO2高温超导可以增强92.4 K下铁电极化,这是原始ML-CGT高出多少(34.7 K)。这些结果不仅澄清了矛盾的磁ML-CGT的机制先前的实验和理论工作,但是也为实现非易失性开门基于磁存储设备多功能铁磁/铁电高温超导。

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