论文标题
FER通过焦耳加热的高速元磁电阻转换
High-speed metamagnetic resistive switching of FeRh through Joule heating
论文作者
论文摘要
由于其靠近室温并表现出高度温度可调性,因此FERH中的元磁有序转变对于寻求将磁性用作状态变量的新型高性能计算设备具有吸引力。我们证明了通过FERH电线中的焦耳加热对过渡的电控制。基于每个域内突然过渡的有限元仿真导致全球平滑的过渡,该过渡与实验发现一致,并提供了对所涉及的热力学的见解。我们的电流高达60 mA的过渡温度降低了150 K,仅受设备尺寸的限制。过渡温度尺度的较大变化具有电流密度和电线长度,这表明底物的绝对电阻和散热也很重要。使用多种偏置条件通过脉冲I-V进行脉冲I-V评估FER相变。我们展示了高速(〜ns)类似于候选人的行为,并报告设备性能参数,例如开关速度和功耗,这些速度和功耗与最新的相变磁化技术相比有利。
Due to its proximity to room temperature and demonstrated high degree of temperature tunability, the metamagnetic ordering transition in FeRh is attractive for novel high-performance computing devices seeking to use magnetism as the state variable. We demonstrate electrical control of the transition via Joule heating in FeRh wires. Finite element simulations based on abrupt state transition within each domain result in a globally smooth transition that agrees with the experimental findings and provides insight into the thermodynamics involved. We measure a 150 K decrease in transition temperature with currents up to 60 mA, limited only by the dimensions of the device. The sizeable shift in transition temperature scales with current density and wire length, suggesting the absolute resistance and heat dissipation of the substrate are also important. The FeRh phase change is evaluated by pulsed I-V using a variety of bias conditions. We demonstrate high speed (~ ns) memristor-like behavior and report device performance parameters such as switching speed and power consumption that compare favorably with state-of-the-art phase change memristive technologies.