论文标题
蜂窝晶格磁铁Na2co2Teo6中的磁相和自旋动力学的田间演变6:23NA NMR研究
Field evolution of magnetic phases and spin dynamics in the honeycomb lattice magnet Na2Co2TeO6: 23Na NMR study
论文作者
论文摘要
我们报告了被提名为Kitaev材料的蜂窝晶格磁铁Na2Co2Teo6中23NA NMR的结果。随着温度和磁场的功能,磁性移位和NMR线的宽度的测量表明,一个自旋序列相位不会出现到9吨的磁场。在Neel温度TN以下的抗磁磁相中,我们发现温度区域延伸至〜tn/2,其中核自旋效果降低速率1/T1在其中增强了磁性磁场,并增强了磁性磁场。该区域越过低温区域,其特征是迅速降低的1/T1,该区域的敏感性较小。这些观察结果表明,在中间温度区域的低能量下,在低温下转变为更常规的自旋波激发,在低温下,频谱重量很大。低能旋转动力学的急剧变化很可能是由于仅在中间温度区域激活的自旋波的强阻尼引起的,这可能是针对三重Q磁顺序,该磁序具有部分有序的矩,作为自旋波的散射中心。在TN附近的顺磁相中,观察到1/T1的急剧抑制。根据对二维量子抗fiferromagnet的重新归一化古典描述的1/T1温度依赖性分析,我们发现了依赖于场的旋转刚度常数,该固定刚度常数与TN缩放为磁场的函数。这意味着能够表征二维自旋相关性和三维远距离顺序的能量尺度的场抑制,这可能与磁场挫败感的效果增加有关。
We report on the results of 23Na NMR in the honeycomb lattice magnet Na2Co2TeO6 which has been nominated as a Kitaev material. Measurements of magnetic shift and width of the NMR line as functions of temperature and magnetic field show that a spin-disordered phase does not appear up to a field of 9 T. In the antiferromagnetic phase just below the Neel temperature TN, we find a temperature region extending down to ~TN/2 where the nuclear spin-lattice relaxation rate 1/T1 remains enhanced and is further increased by a magnetic field. This region crosses over to a low temperature region characterized by the rapidly decreasing 1/T1 which is less field-sensitive. These observations suggest incoherent spin excitations with a large spectral weight at low energies in the intermediate temperature region transforming to more conventional spin-wave excitations at low temperatures. The drastic change of the low-energy spin dynamics is likely caused by strong damping of spin waves activated only in the intermediate temperature region, which may be realized for triple-q magnetic order possessing partially-disordered moments as scattering centers of spin waves. In the paramagnetic phase near TN, dramatic field suppression of 1/T1 is observed. From analysis of the temperature dependence of 1/T1 based on the renormalized-classical description of a two-dimensional quantum antiferromagnet, we find the field-dependent spin stiffness constant that scales with TN as a function of magnetic field. This implies field suppression of the energy scale characterizing both two-dimensional spin correlations and three-dimensional long-range order, which may be associated with an increasing effect of frustration in magnetic fields.