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Unconventional GMR angular dependence using a compensated ferrimagnet

机译:使用补偿Ferrimagnet的非传统GMR角度依赖性

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We have designed a GdCo/Cu/NiFe giant magnetoresistance (GMR) trilayer, the magnetoresistance of which does not always depend on the angle between the magnetisations of the electrodes. Using a GdCo ferrimagnetic alloy close to compensation, it was possible to experimentally reach the spin flop field B_(sf) of the ferrimagnetic layer. Below B_(sf), the ferrimagnetic layer behaves as a ferromagnetic layer, however above B_(sf), the ferrimagnetic sublattice magnetisations are no longer antiparallel and rotate 90° away from the GdCo layer total magnetisation, i.e. 90° away from the applied field. The GMR responds to the angle between Co and NiFe magnetisations and not to the angle between GdCo and NiFe magnetisations. Such a structure allows to study the change of sign of the GdCo spin polarisation as a function of temperature, and details of the GdCo magnetisation when usual magnetometry is difficult. FeNi can be seen as a sensor for the in-plane component of Co sublattice magnetisation, whereas extraordinary Hall effect measurements give a complementary image of the perpendicular component of the Co magnetisation.
机译:我们设计了一个GdCo /铜/镍铁巨磁阻(GMR)三层,磁阻其中并不总是取决于电极的磁化之间的角度。使用GdCo铁磁合金接近补偿,有可能通过实验达到亚铁磁性层的自旋触发器字段B_(SF)。下面B_(SF),亚铁磁性层表现为一个铁磁性层,但是上述B_(SF),该铁磁亚晶格磁化不再反平行并从GdCo层总磁化旋转90°远离的,即90°施加的场远。该GMR响应Co和镍铁磁化之间,而不是GdCo和镍铁磁化之间的夹角角度。这种结构允许以研究GdCo自旋极化作为温度的函数的符号的变化,并且GdCo磁化的细节时通常磁力是困难的。铁 - 镍合金可以被看作是对钴亚晶格磁化的平面内分量的传感器,而反常霍耳效应测量得到钴磁化垂直分量的互补图像。

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