论文标题
GD-FE-CO Hall bar中的感官当前依赖的胁迫和磁化松弛
Sense current dependent coercivity and magnetization relaxation in Gd-Fe-Co Hall bar
论文作者
论文摘要
在不同环境中对磁层特性的理解对于任何旋转的应用至关重要。在实际应用之前,对此类设备进行彻底审查是必修的。在这里,我们研究了MGA限制的HF/GDFECO双层(富含FECO)的潜在大厅设备,以在不同电压探针线宽度和直流传感电流下的成核场周围进行磁化松弛。该设备的特征是横向和纵向大厅几何的异常测量,用于两个不同的探针宽度A(5微米)和B(1千分尺)。霍尔环(\ r {ho} xy-h和rxx-h)的胁迫下降,增加了两个探针的感官电流。对于探针B,观察到相对较低的传感电流的施加性(\ r {ho} XY-H环)的急剧下降,这归因于由模式过程引起的b处的可忽略不计的电流分流和固定位点的存在。 The average domain wall velocities at various sensing currents for probe B are found to be smaller than probe A, from the transverse and longitudinal Hall geometry magnetization relaxation measurements, which agrees with pinning sites and Joule heating effect at probe B. The notch position in the pattern and the longitudinal Hall resistance curve peak shape suggest the domain wall propagation direction from probe B to probe A in the current channel.这项研究突出了不同成核场,传感电流和霍尔探针纵横比的域壁传播。
The understanding of the characteristics of a magnetic layer in a different environment is crucial for any spintronics application. Before practical applications, thorough scrutiny of such devices is compulsory. Here we study such a potential Hall device of MgO-capped Hf/GdFeCo bilayer (FeCo-rich) for magnetization relaxation around nucleation fields at different voltage probe line widths and dc sensing currents. The device is characterized by anomalous Hall measurements in transverse and longitudinal Hall geometries for two different probe widths A (5 micrometer) and B (1 micrometer). The coercivities of the Hall loops (\r{ho}xy-H and Rxx-H) drop with increasing the sense current for both the probes. For probe B, the sharp and large drop in coercivity (\r{ho}xy-H loops) at comparatively lower sensing currents is observed, which is attributed to the negligible current shunting and presence of pinning site at B caused by the patterning process. The average domain wall velocities at various sensing currents for probe B are found to be smaller than probe A, from the transverse and longitudinal Hall geometry magnetization relaxation measurements, which agrees with pinning sites and Joule heating effect at probe B. The notch position in the pattern and the longitudinal Hall resistance curve peak shape suggest the domain wall propagation direction from probe B to probe A in the current channel. This study highlights the domain wall propagation at different nucleation fields, sensing currents, and the Hall probe aspect ratios.