论文标题
由$μ^+$ sr研究的抗铁磁三角晶格化合物$ _2 $以及中子和X射线衍射的核和磁性自旋结构
Nuclear and magnetic spin structure of the antiferromagnetic triangular lattice compound LiCrTe$_2$ investigated by $μ^+$SR as well as neutron and X-ray diffraction
论文作者
论文摘要
两个$ - $尺寸(2D)三角形晶格反铁磁铁(2d $ - $ tla)通常由于晶格的几何形状和电子特性之间存在强烈的相互作用而表现出有趣的物理和技术特性。最近合成的2 $ - $尺寸过渡金属二进制金属元素licrte $ _2 $,是2D $ -TLA,丰富了可以呈现此类属性的材料范围。在这项工作中,使用MUON自旋旋转($μ^+$ sr)和中子粉衍射(NPD)来揭示LiCrte $ _2 $的真正磁性和基态。从高$ - $分辨率NPD来看,基本$ - $温度的磁性自旋顺序不是前面建议的,而是螺旋性的,而是与$ ab- $ plane内的铁磁性(FM)旋转耦合的界线抗fiferromagnetic(AFM),并沿着$ c- $ axis进行AFM耦合。有序的磁性CR力矩被确定为$μ_ {\ rm cr} = $ 2.36 $μ_ {\ rm b} $。从详细的$μ^+$ SR测量值我们观察到AFM订购温度$ t _ {\ rm n} \约$ 125 k。此值明显高于磁性大量测量值先前报道的值。从$μ^+$ sr中,我们能够提取磁性订单参数,其关键指数允许我们在3D Heisenberg AFM通用类中对LICRTE $ _2 $进行分类。最后,通过将我们的磁性研究与高$ - $分辨率同步加速器X $ - $ ray衍射(XRD)相结合,我们发现核和磁性旋转晶格之间有明确的耦合。这表明有可能具有强木$ - $ phonon耦合的可能性,类似于与密切相关的复合licro $ _2 $中以前观察到的。
Two$-$dimensional (2D) triangular lattices antiferromagnets (2D$-$TLA) often manifest intriguing physical and technological properties, due to the strong interplay between lattice geometry and electronic properties. The recently synthesized 2$-$dimensional transition metal dichalcogenide LiCrTe$_2$, being a 2D$-$TLA, enriched the range of materials which can present such properties. In this work, muon spin rotation ($μ^+$SR) and neutron powder diffraction (NPD) have been utilized to reveal the true magnetic nature and ground state of LiCrTe$_2$. From high$-$resolution NPD the magnetic spin order at base$-$temperature is not, as previously suggested, helical, but rather collinear antiferromagnetic (AFM) with ferromagnetic (FM) spin coupling within the $ab-$plane and AFM coupling along the $c-$axis. The ordered magnetic Cr moment is established as $μ_{\rm Cr}=$ 2.36 $μ_{\rm B}$. From detailed $μ^+$SR measurements we observe an AFM ordering temperature $T_{\rm N}\approx$ 125 K. This value is remarkably higher than the one previously reported by magnetic bulk measurements. From $μ^+$SR we are able to extract the magnetic order parameter, whose critical exponent allows us to categorize LiCrTe$_2$ in the 3D Heisenberg AFM universality class. Finally, by combining our magnetic studies with high$-$resolution synchrotron X$-$ray diffraction (XRD), we find a clear coupling between the nuclear and magnetic spin lattices. This suggests the possibility for a strong magnon$-$phonon coupling, similar to what has been previously observed in the closely related compound LiCrO$_2$.