论文标题
各向异性诱导化学调节的非晶铁磁性膜中的自旋重定位
Anisotropy induced spin re-orientation in chemically-modulated amorphous ferrimagnetic films
论文作者
论文摘要
调整磁化磁化面内部和平面外向之间的竞争的能力为构造特定温度下的旋转重新定位过渡的热传感器提供了一种方法。我们已经观察到使用扫描传输X射线显微镜(STXM)和磁性测量值的结构无定形,铁磁性稀土金属(RE-TM)合金薄膜的可调,温度驱动的自旋重新定向。 FEGD中自旋重新定位转变的性质可以通过对膜的化学组成的非平衡,纳米级调节来充分说明。该调制导致纳米级斑点的磁性域模式叠加在平面内域的背景下,该域形成了微米尺度图案元素的劳达构型。正是这种斑点磁性结构产生了鲜明的两步逆转机制,而温度取决于温度。通过温度平衡竞争性各向异性的可能性为创建和操纵拓扑旋转纹理的机会打开了机会。
The ability to tune the competition between the in-plane and out-of-plane orientation of magnetization provides a means to construct thermal sensors with a sharp spin re-orientation transition at specific temperatures. We have observed such a tuneable, temperature driven spin re-orientation in structurally amorphous, ferrimagnetic rare earth-transition metal (RE-TM) alloy thin films using scanning transmission X-ray microscopy (STXM) and magnetic measurements. The nature of the spin re-orientation transition in FeGd can be fully explained by a non-equilibrium, nanoscale modulation of the chemical composition of the films. This modulation leads to a magnetic domain pattern of nanoscale speckles superimposed on a background of in-plane domains that form Laudau configurations in micron-scale patterned elements. It is this speckle magnetic structure that gives rise to a sharp two step-reversal mechanism that is temperature dependent. The possibility to balance competing anisotropies through the temperature opens opportunities to create and manipulate topological spin textures.