Luis F Cuñado Jose, Pedrosa Javier, Ajejas Fernando, Perna Paolo, Miranda Rodolfo, Camarero Julio
IMDEA-Nanociencia, Campus Universidad Autónoma de Madrid, 28049 Madrid, Spain. Departamento de Física de la Materia Condensada and Instituto 'Nicolás Cabrera', Universidad Autónoma de Madrid, 28049 Madrid, Spain.
J Phys Condens Matter. 2017 Oct 11;29(40):405805. doi: 10.1088/1361-648X/aa7f45. Epub 2017 Jul 12.
Angle- and temperature-dependent vectorial magnetometry measurements are necessary to disentangle the effective magnetic symmetry in magnetic nanostructures. Here we present a detailed study on an Fe(1 0 0) thin film system with competing collinear biaxial (four-fold symmetry) and uniaxial (two-fold) magnetic anisotropies, carried out with our recently developed full angular/broad temperature range/vectorial-resolved magneto-optical Kerr effect magnetometer, named TRISTAN. The data give direct views on the angular and temperature dependence of the magnetization reversal pathways, from which characteristic axes, remanences, critical fields, domain wall types, and effective magnetic symmetry are obtained. In particular, although the remanence shows four-fold angular symmetry for all investigated temperatures (15 K-400 K), the critical fields show strong temperature and angular dependencies and the reversal mechanism changes for specific angles at a given (angle-dependent) critical temperature, showing signatures of an additional collinear two-fold symmetry. This symmetry-breaking is more relevant as temperature increases to room temperature. It originates from the competition between two anisotropy contributions with different symmetry and temperature evolution. The results highlight the importance of combining temperature and angular studies, and the need to look at different magnetic parameters to unravel the underlying magnetic symmetries and temperature evolutions of the symmetry-breaking effects in magnetic nanostructures.
为了厘清磁性纳米结构中的有效磁对称性,需要进行角度和温度相关的矢量磁力测量。在此,我们利用我们最近开发的名为TRISTAN的全角度/宽温度范围/矢量分辨磁光克尔效应磁力计,对具有竞争共线双轴(四重对称性)和单轴(二重)磁各向异性的Fe(1 0 0)薄膜系统进行了详细研究。这些数据直接展示了磁化反转路径的角度和温度依赖性,从中可以获得特征轴、剩磁、临界场、畴壁类型和有效磁对称性。特别是,尽管在所有研究温度(15 K - 400 K)下剩磁都呈现四重角对称性,但临界场表现出强烈的温度和角度依赖性,并且在给定的(与角度相关的)临界温度下,反转机制会因特定角度而改变,显示出额外共线二重对称性的特征。随着温度升高到室温,这种对称性破缺更为显著。它源于具有不同对称性和温度演化的两种各向异性贡献之间的竞争。结果突出了结合温度和角度研究的重要性,以及查看不同磁参数以揭示磁性纳米结构中潜在磁对称性和对称性破缺效应的温度演化的必要性。