论文标题
GDFECO合金中的全光螺旋与无关的切换状态图
All-optical helicity-independent switching state diagram in GdFeCo alloys
论文作者
论文摘要
由单个飞秒激光脉冲引起的超快速磁化切换,在没有施加的磁场下,由于其高能量和超快速记忆应用的高潜力,在过去的10年中引起了很多关注。基于GD的材料,单脉冲螺旋不依赖性开关大多被证明。现在,根据合金厚度(浓度),优化脉冲持续时间和切换GDFECO磁铁所需的能量很重要。在这里,我们通过实验报告状态图,显示了一个单个脉冲后获得的磁态,这取决于各种具有不同组成和厚度的GDFECO薄膜的激光脉冲持续时间和通量。我们证明,这些状态图具有相似的特征:切换较长的较长脉冲持续时间的通量窗口,并且在考虑的脉冲持续时间范围内,单脉冲切换的临界通量随脉冲持续时间的函数线性增加,而创建多域状态所需的临界通量几乎保持恒定。基于原子自旋模型的计算定性地重现了实验状态图及其进化。通过研究组合物和厚度对状态图的影响,我们证明了最佳的能量效率和最长的脉冲持续时间是在磁力补偿周围浓缩的最佳脉冲持续时间。
Ultra-fast magnetization switching induced by a single femtosecond laser pulse, under no applied magnetic field has attracted a lot of attention during the last 10 years because of its high potential for low energy and ultra-fast memory applications. Single-pulse helicity-independent switching has mostly been demonstrated for Gd based materials. It is now important to optimize the pulse duration and the energy needed to switch a GdFeCo magnet depending on the alloy thickness, concentration. Here we experimentally report state diagrams showing the magnetic state obtained after one single pulse depending on the laser pulse duration and fluence for various GdFeCo thin films with different compositions and thicknesses. We demonstrate that these state diagrams share similar characteristics: the fluence window for switching narrows for longer pulse duration and for the considered pulse duration range the critical fluence for single pulse switching increases linearly as a function of the pulse duration while the critical fluence required for creating a multidomain state remains almost constant. Calculations based on the atomistic spin model qualitatively reproduce the experimental state diagrams and their evolution. By studying the effect of the composition and the thickness on the state diagram, we demonstrated that the best energy efficiency and the longest pulse duration for switching are obtained for concentration around the magnetic compensation.