论文标题
弱沮丧的二维范德华绝缘子CRPSE $ _3 $中的不符合性抗铁磁序列
Incommensurate antiferromagnetic order in weakly frustrated two-dimensional van der Waals insulator CrPSe$_3$
论文作者
论文摘要
尽管磁性挫败感抑制了磁性,但它被维持,但以复杂的顺序形式出现,例如弱挫折系统中的环形或旋转密度波。本文中,我们报告了一个弱磁性的二维Van der waals材料crpse $ _3 $。 PolyCrystalline CRPSE $ _3 $以优化温度为700 $^\ CIRC $ C合成,以避免形成任何次要阶段(例如,Cr $ _2 $ SE $ _3 $)。反铁磁过渡出现在$ t_n \ sim 126 $ k,具有较大的居里 - 韦斯温度$ t _ {\ rm cw} \ sim -371 $通过磁化率测量,表明crpse $ _3 $ _3 $的挫败感较弱,带有沮丧的因子$ f(| t _ sim | t _ sim p _ $ cw} \ rm cw}。显然,在低温(低于120K)下的中子衍射测量值揭示了远距离不相关的旋转旋转波抗磁性抗磁性抗磁性顺序。如拉曼光谱测量所证实的那样,在研究的温度范围内保留了C2/M对称性的单斜晶体结构。我们对二维(2D)磁性材料的旋转密度波抗磁性顺序的发现,以前在MPX $ _3 $家族中未观察到,有望在2D极限下以磁性的物理化丰富,从而为其在纺丝和量子设备中的实际应用开放机会。
Although the magnetic order is suppressed by a strong magnetic frustration, it is maintained but appears in complex order forms such as a cycloid or spin density wave in weakly frustrated systems. Herein, we report a weakly magnetic-frustrated two-dimensional van der Waals material CrPSe$_3$. Polycrystalline CrPSe$_3$ was synthesized at an optimized temperature of 700$^\circ$C to avoid the formation of any secondary phases (e.g., Cr$_2$Se$_3$). The antiferromagnetic transition appeared at $T_N\sim 126$ K with a large Curie-Weiss temperature $T_{\rm CW} \sim -371$ via magnetic susceptibility measurements, indicating weak frustration in CrPSe$_3$ with a frustration factor $f (|T_{\rm CW}|/T_N) \sim 3$. Evidently, the formation of long-range incommensurate spin-density wave antiferromagnetic order with the propagation vector $k = (0, 0.04, 0)$ was revealed by neutron diffraction measurements at low temperatures (below 120K). The monoclinic crystal structure of C2/m symmetry is preserved over the studied temperature range down to 20K, as confirmed by Raman spectroscopy measurements. Our findings on the spin density wave antiferromagnetic order in two-dimensional (2D) magnetic materials, not previously observed in the MPX$_3$ family, are expected to enrich the physics of magnetism at the 2D limit, thereby opening opportunities for their practical applications in spintronics and quantum devices.