论文标题

通过SB掺杂MNBI4TE7中的反塞特缺损来调整磁力和带拓扑

Tuning the magnetism and band topology through antisite defects in Sb doped MnBi4Te7

论文作者

Hu, Chaowei, Lien, Shang-Wei, Feng, Erxi, Mackey, Scott, Tien, Hung-Ju, Mazin, Igor I., Cao, Huibo, Chang, Tay-Rong, Ni, Ni

论文摘要

The fine control of magnetism and electronic structure is crucial since the interplay between magnetism and band topology can lead to various novel magnetic topological states including axion insulators, magnetic Weyl semimetals and Chern insulators etc. Through crystal growth, transport, thermodynamic, neutron diffraction measurements, we show that with Sb-doping, the newly-discovered intrinsic antiferromagnetic topological insulator MnBi4Te7从抗磁磁性变成铁磁,然后进化。我们将其归因于掺杂时Mn(BI,SB)反静脉的形成,从而导致其他Mn sublattices改变了细腻的层间磁相互作用,并导致主要的Mn sublattice从抗fiferromagnetic转变为Ferro-Magnetic。我们进一步研究了使用第一原理计算的反质物对带拓扑的影响。该系列不考虑反弥漫性,从抗磁性拓扑绝缘子(X = 0)演变为铁磁轴突绝缘子。在夸张的情况下,周期性的反异地的16.7%,修饰条带拓扑,并在中间掺杂物中实现I型磁性Weyl半准相。因此,这个兴奋剂系列提供了一个富有成果的平台,并具有连续可调的磁性和拓扑,用于调查新兴现象,包括量子异常的霍尔效应,费米电弧状态等。

The fine control of magnetism and electronic structure is crucial since the interplay between magnetism and band topology can lead to various novel magnetic topological states including axion insulators, magnetic Weyl semimetals and Chern insulators etc. Through crystal growth, transport, thermodynamic, neutron diffraction measurements, we show that with Sb-doping, the newly-discovered intrinsic antiferromagnetic topological insulator MnBi4Te7 evolves from antiferro-magnetic to ferromagnetic and then ferrimagnetic. We attribute this to the formation of Mn(Bi,Sb) antisites upon doping, which result in additional Mn sublattices that modify the delicate interlayer magnetic interactions and cause the dominant Mn sublattice to go from antiferromagnetic to ferro-magnetic. We further investigate the effect of antisites on the band topology using the first-principles calculations. Without considering antisites, the series evolves from antiferromagnetic topological insulator (x = 0) to ferromagnetic axion insulators. In the exaggerated case of 16.7% of periodic antisites, the band topology is modified and type-I magnetic Weyl semimetal phase can be realized at intermediate dopings. Therefore, this doping series provides a fruitful platform with continuously tunable magnetism and topology for investigating emergent phenomena, including quantum anomalous Hall effect, Fermi arc states, etc.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源