论文标题

弱耦合的三角形旋转管CSCRF $ _4 $中的非弹性中子散射

Inelastic Neutron Scattering in Weakly Coupled Triangular Spin Tubes CsCrF$_4$

论文作者

Kikuchi, Hodaka, Asai, Shinichiro, Manaka, Hirotaka, Hagihala, Masato, Itoh, Shinichi, Masuda, Takatsugu

论文摘要

我们进行了非弹性中子散射(INS)实验,以测量自旋管候选CSCRF $ _ {4} $的多晶样品上的自旋动力学。该化合物表现出从顺磁相的连续过渡到一个120 $^{\ Circ} $结构的中间温度(IT)相,向另一个120 $^{\ Circ} $结构的低温(LT)相。在LT相中,观察到的中子光谱与计算的中子光谱之间的详细比较表明,自旋汉密尔顿被确定为抗磁性自旋管,包括互动相互作用的扰动项,dzyaloshinskii-Moriya相互作用和单离子各向异性。基于基态的相图是经典计算的。从LT相测得的INS光谱获得的自旋汉密尔顿中的一组参数非常接近IT相结构的120 $^{\ circ} $结构的相位。令人惊讶的是,在IT相中测得的INS光谱与粉末平均光谱水平中的LT相的频谱相同,即使其中中的磁结构和LT相也不同。观察到与两个不同的静态结构兼容的相同动力结构。观察到的光谱没有差异表明温度没有变化,这表明连续的相变的起源是按下序列机制。

We performed inelastic neutron scattering (INS) experiments to measure spin dynamics on a polycrystalline sample of a spin tube candidate CsCrF$_{4}$. The compound exhibits a successive phase transition from a paramagnetic phase through an intermediate temperature (IT) phase of a 120$^{\circ}$ structure to a low temperature (LT) phase of another 120$^{\circ}$ structure. Elaborate comparison between observed and calculated neutron spectra in LT phase reveals that the spin Hamiltonian is identified as antiferromagnetic spin tubes including perturbative terms of intertube interaction, Dzyaloshinskii-Moriya interaction, and single ion anisotropy. A phase diagram for the ground state is classically calculated. A set of parameters in the spin Hamiltonian obtained from the INS spectra measured in LT phase is quite close to a boundary to the phase of the 120$^{\circ}$ structure of IT phase. The INS spectra measured in IT phase is, surprisingly, the same as those in LT phase in the level of powder averaged spectra, even though the magnetic structures in IT and LT phases are different. Identical dynamical structures compatible with two different static structures are observed. No difference in the observed spectra indicates no change of the spin Hamiltonian with the temperature, suggesting that the origin of the successive phase transition being order-by-disorder mechanism.

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