论文标题
低浓度SB掺杂获得的铁磁MNBI4TE7:探索拓扑量子状态的有前途的平台
Ferromagnetic MnBi4Te7 obtained with low concentration Sb doping: A promising platform for exploring topological quantum states
论文作者
论文摘要
磁相,化学电位和结构的调整对于观察$ MNBI_2TE_4(BI_2TE_3)_m $(M = 0、1、2和3)的各种外来拓扑量子状态至关重要。在这里,我们在$ MN(BI_ {1-X} SB_X)_4TE_7 $中显示了具有手性晶体结构的铁磁(FM)相,该阶段是通过调整生长条件和SB浓度而获得的。与以前报道的$ MN(BI_ {1-X} SB_X)_4TE_7 $(仅在高SB掺杂水平下显示FM过渡),我们的样本显示FM过渡($ T_C $ = 13.5 K),掺杂水平为15%-27%。此外,我们的单晶体X射线衍射结构的改进发现SB掺杂导致P3的空间群的手性结构,与父级化合物$ MNBI_4TE_7 $的中心对称P-3M1晶体结构形成鲜明对比。通过ARPES的测量,我们还证明了非平凡带拓扑保存在SB掺杂的FM样品中。鉴于该系统的非平凡带拓扑对于低SB掺杂水平仍然很强,因此我们成功地使FM $ MN(BI_ {1-X} SB_X)_4TE_7 $,$ X $ = 0.15、0.175、0.175、0.175、0.2和0.27 PAVES可以实现预测的拓扑量子量子状态,例如Axemopic Quantopic Statim axemion Intem insex Insulator semirator and semirator。此外,我们还观察到抗磁磁性$ MNBI_4TE_7 $和FM $ MN(BI_ {1-X} SB_X)_4TE_7 $样品的磁性玻璃行为,我们相信这起源于群集自旋玻璃相位与远距离AFM/FM订单共存。我们还讨论了抗岩石Mn离子如何影响层间磁耦合以及该系统中FM Intayer耦合如何稳定。
The tuning of magnetic phase, chemical potential, and structure is crucial to observe diverse exotic topological quantum states in $MnBi_2Te_4(Bi_2Te_3)_m$ (m = 0, 1, 2, & 3). Here we show a ferromagnetic (FM) phase with a chiral crystal structure in $Mn(Bi_{1-x}Sb_x)_4Te_7$, obtained via tuning the growth conditions and Sb concentration. Unlike previously reported $Mn(Bi_{1-x}Sb_x)_4Te_7$, which exhibits FM transitions only at high Sb doping levels, our samples show FM transitions ($T_C$ = 13.5 K) at 15%-27% doping levels. Furthermore, our single crystal x-ray diffraction structure refinements find Sb doping leads to a chiral structure with the space group of P3, contrasted with the centrosymmetric P-3m1 crystal structure of the parent compound $MnBi_4Te_7$. Through ARPES measurements, we also demonstrated that the non-trivial band topology is preserved in the Sb-doped FM samples. Given that the non-trivial band topology of this system remains robust for low Sb doping levels, our success in making FM $Mn(Bi_{1-x}Sb_x)_4Te_7$ with $x$ = 0.15, 0.175, 0.2 & 0.27 paves the way for realizing the predicted topological quantum states such as axion insulator and Weyl semimetals. Additionally, we also observed magnetic glassy behavior in both antiferromagnetic $MnBi_4Te_7$ and FM $Mn(Bi_{1-x}Sb_x)_4Te_7$ samples, which we believe originates from cluster spin glass phases coexisting with long-range AFM/FM orders. We have also discussed how the antisite Mn ions impact the interlayer magnetic coupling and how FM interlayer coupling is stabilized in this system.