论文标题

纯ceb6中自旋动力学的中子散射研究

Neutron-scattering studies of spin dynamics in pure and doped CeB6

论文作者

Portnichenko, P. Y., Cameron, A. S., Inosov, D. S.

论文摘要

作为一个简单的立方系统,每个葡萄菌离子只有一个F电子,CEB6具有模型特征,用于研究轨道现象与磁性的相互作用。它也是一个表现出磁性隐藏顺序的化合物的教科书示例 - 一个具有有序四极矩的低温磁相。很难在常见的X射线或中子散射实验中识别这种隐藏阶态的对称性,因为在零场中没有信号,但是可以应用替代技术,例如外部场中的中子衍射,谐振X射线散射或超声检查。表征隐藏顺序的另一种可能的方法是查看磁激发光谱,该光谱带有多极相互作用的烙印和其分散关系中隐藏顺序参数。使用特定的候选模型,计算分散体,然后与用无弹性中子散射测量的分散体进行比较。直到最近,只有有限的数据表明,在应用磁场中沿一些高对称方向测量的分散激发存在。早期尝试将此类计算与实验进行比较,表明只能鉴定出高对称点处的最强模式。目前对最新中子散射结果的综述旨在满足更准确的非弹性中子散射实验的需求,这是田间和温度的函数,使我们有机会确定CEB6中的现有激发分支,并最终将它们与理论上预测的多极激发进行比较。

As a simple cubic system with only one f electron per cerium ion, CeB6 is of model character to investigate the interplay of orbital phenomena with magnetism. It is also a textbook example of a compound that exhibits magnetically hidden order -- a low-temperature magnetic phase with ordered quadrupolar moments. It is difficult to identify the symmetry of such hidden-order states in common x-ray or neutron scattering experiments, as there is no signal in zero field, however alternative techniques like neutron diffraction in external field, resonant x-ray scattering, or ultrasonic investigations can be applied. Another possible method for characterizing hidden order is to look at the magnetic excitation spectrum, which carries the imprint of the multipolar interactions and the hidden order parameter in its dispersion relations. Using a specific candidate model, the dispersion is calculated and then compared to that measured with inelastic neutron scattering. Until recently, only a limited amount of data which show the presence of dispersing excitations measured along a few high-symmetry directions in an applied magnetic field were available. Early attempts to compare such calculations with experiments showed that only strongest modes at high-symmetry points could be identified. The present review of the most recent neutron-scattering results is intended to satisfy the need of more accurate inelastic neutron-scattering experiments as a function of field and temperature, giving us the opportunity to identify existing excitation branches in CeB6 and conclusively compare them with the theoretically predicted multipolar excitations.

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