Chen Chao, Zheng Cuixiu, Hu Shanshan, Zhang Jianwei, Liu Yaowen
School of Physics Science and Engineering, Tongji University, Shanghai 200092, China.
Materials (Basel). 2025 Mar 7;18(6):1193. doi: 10.3390/ma18061193.
Recent experiments have reported distinct handedness of spin waves across the compensation temperatures of ferrimagnets, offering promising functionalities for ferrimagnet-based magnonic applications with two distinct polarizations. This paper investigates the effects of various factors on the compensation points of GdFe ferrimagnets through atomistic-level spin dynamics simulations. The results show that as the Gd composition increases, both the magnetization compensation temperature and the angular momentum compensation temperature of the GdFe alloy increase, with a linear relationship observed between the two compensation temperatures. Furthermore, we show that external magnetic fields and antiferromagnetic exchange strength can also modulate the compensation temperatures. Moreover, the antiferromagnetic exchange strength also affects the resonance frequency of ferrimagnetic materials. In the absence of an external field, the resonance frequency of GdFe is divided into two branches and both increase linearly with the increase in antiferromagnetic exchange strength. This study may stimulate fundamental research on compensated ferrimagnets, which may be useful for building chirality-based spintronics.
最近的实验报道了在铁氧体磁体的补偿温度范围内自旋波存在明显的手性,这为基于铁氧体磁体的具有两种不同极化的磁子学应用提供了有前景的功能。本文通过原子级自旋动力学模拟研究了各种因素对GdFe铁氧体磁体补偿点的影响。结果表明,随着Gd成分的增加,GdFe合金的磁化补偿温度和角动量补偿温度均升高,且两个补偿温度之间存在线性关系。此外,我们表明外部磁场和反铁磁交换强度也可以调节补偿温度。而且,反铁磁交换强度还会影响铁磁材料的共振频率。在没有外部磁场的情况下,GdFe的共振频率分为两个分支,并且都随着反铁磁交换强度的增加而线性增加。这项研究可能会激发对补偿铁氧体磁体的基础研究,这可能有助于构建基于手性的自旋电子学。