论文标题
在低温温度下垂直磁性隧道连接的自旋扭矩切换中的热效应
Thermal effects in spin torque switching of perpendicular magnetic tunnel junctions at cryogenic temperatures
论文作者
论文摘要
温度在磁性隧道连接的自旋扭矩切换中起重要作用,导致磁化波动降低开关电压,但也引入了开关误差。在这里,我们介绍了一项系统的研究,对最新的垂直磁性隧道连接纳米柱(直径为40至60 nm)的自旋扭矩切换概率的温度依赖性从室温降低到4 K,最多采样了一百万个切换事件。开关电压处的连接温度 - 从热辅助旋转扭矩开关模型中获得的---在低于75 K的温度下饱和,表明连接加热在此温度下显着,并且自旋扭矩切换保持高度随机至4K。纳米连接中的热流动模型与热能的热量相关,与热量的热量相关,并在降低的热量和热量中相关。
Temperature plays an important role in spin torque switching of magnetic tunnel junctions causing magnetization fluctuations that decrease the switching voltage but also introduce switching errors. Here we present a systematic study of the temperature dependence of the spin torque switching probability of state-of-the-art perpendicular magnetic tunnel junction nanopillars (40 to 60 nm in diameter) from room temperature down to 4 K, sampling up to a million switching events. The junction temperature at the switching voltage---obtained from the thermally assisted spin torque switching model---saturates at temperatures below about 75 K, showing that junction heating is significant below this temperature and that spin torque switching remains highly stochastic down to 4 K. A model of heat flow in a nanopillar junction shows this effect is associated with the reduced thermal conductivity and heat capacity of the metals in the junction.