Wulfhekel Wulf, Schlickum Uta, Kirschner Jürgen
Max-Planck Institut für Mikrostrukturphysik, Weinberg 2, D-06120 Halle, Germany.
Microsc Res Tech. 2005 Feb;66(2-3):105-16. doi: 10.1002/jemt.20150.
The high lateral resolution of spin-polarized scanning tunneling microscopy allows new insights into the spin structure of antiferromagnets on the nanometer range. We demonstrate the capability to image a well-defined in-plane component of the sample spin polarization and discuss the spin structure of antiferromagnetic bct Mn in contact with the ferromagnetic Fe(001) substrate. Mn atoms couple ferromagnetically within a Mn atomic plane, while normal to the surface a layer-wise antiferromagnetic order was found. Magnetic frustrations arise in this system at Fe substrate steps at the interface, where topologically induced 180 degrees domain walls are created in the Mn film. A clear widening of the enforced domain walls with increasing Mn thickness was found. The measured widths could be fitted with a linear function and are explained on the basis of a Heisenberg model.
自旋极化扫描隧道显微镜的高横向分辨率使人们能够在纳米尺度上对反铁磁体的自旋结构有新的认识。我们展示了对样品自旋极化的明确平面内分量进行成像的能力,并讨论了与铁磁体Fe(001)衬底接触的反铁磁体bct Mn的自旋结构。Mn原子在Mn原子平面内铁磁耦合,而垂直于表面则发现了层状反铁磁序。在该系统中,界面处Fe衬底台阶处会出现磁阻挫,在Mn薄膜中会产生拓扑诱导的180度畴壁。发现随着Mn厚度的增加,强制畴壁明显变宽。测量得到的宽度可以用线性函数拟合,并基于海森堡模型进行解释。