论文标题
电子旋转共振和铁磁共振光谱在范德华磁铁CRCL $ _3 $的高场相中
Electron spin resonance and ferromagnetic resonance spectroscopy in the high-field phase of the van der Waals magnet CrCl$_3$
论文作者
论文摘要
我们报告了一项关于范德华磁铁CRCL $ _3 $的单晶的全面的高场/高频电子旋转共振(ESR)研究。这种材料虽然已经闻名了一段时间,但在新型Spintronic设备中使用范德华磁铁的情况下,最近受到了最近的关注。共振场的温度依赖性测量在4到175 K之间进行,并且外部磁场平行地施加并垂直于晶体结构的蜂窝平面。这些研究表明,共振线从已在过渡到磁有序状态的温度下已经从已经的顺磁共振位置转移。因此,建立了过渡上方的铁磁短距离相关性的存在,并且证明了标题化合物中磁性的本质上具有二维性质。为了研究现场诱导的磁各向异性在低温下有效诱导的铁磁状态,在4 K下进行了频率依赖性的铁磁共振(FMR)测量。通过基于数值模拟分析了两个磁场方向之间观察到的各向异性,基于基于数值模拟,基于基于femr fmr的数值模拟。如果考虑到研究晶体的形状各向异性,则这些模拟与测量的数据非常吻合,而在CRCL $ _3 $中发现磁晶的各向异性可以忽略不计。因此,没有明显的固有各向异性使该材料实际上是一种理想的各向同性海森堡磁铁。
We report a comprehensive high-field/high-frequency electron spin resonance (ESR) study on single crystals of the van der Waals magnet CrCl$_3$. This material, although being known for quite a while, has received recent significant attention in a context of the use of van der Waals magnets in novel spintronic devices. Temperature-dependent measurements of the resonance fields were performed between 4 and 175 K and with the external magnetic field applied parallel and perpendicular to the honeycomb planes of the crystal structure. These investigations reveal that the resonance line shifts from the paramagnetic resonance position already at temperatures well above the transition into a magnetically ordered state. Thereby the existence of ferromagnetic short-range correlations above the transition is established and the intrinsically two-dimensional nature of the magnetism in the title compound is proven. To study details of the magnetic anisotropies in the field-induced effectively ferromagnetic state at low temperatures, frequency-dependent ferromagnetic resonance (FMR) measurements were conducted at 4 K. The observed anisotropy between the two magnetic-field orientations is analyzed by means of numerical simulations based on a phenomenological theory of FMR. These simulations are in excellent agreement with measured data if the shape anisotropy of the studied crystal is taken into account, while the magnetocrystalline anisotropy is found to be negligible in CrCl$_3$. The absence of a significant intrinsic anisotropy thus renders this material as a practically ideal isotropic Heisenberg magnet.