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垂直形状各向异性磁随机存取存储器的热力学性质与开关动力学

Thermodynamic properties and switching dynamics of perpendicular shape anisotropy MRAM.

作者信息

Lack Wayne, Jenkins Sarah, Meo Andrea, Chantrell Roy W, McKenna Keith M, Evans Richard F L

机构信息

School of Physics, Engineering and Technology, University of York, York YO10 5DD, United Kingdom.

出版信息

J Phys Condens Matter. 2024 Jan 5;36(14). doi: 10.1088/1361-648X/ad19a0.

Abstract

The power consumption of modern random access memory (RAM) has been a motivation for the development of low-power non-volatile magnetic RAM (MRAM). Based on a CoFeB/MgO magnetic tunnel junction, MRAM must satisfy high thermal stability and a low writing current while being scaled down to a sub-20 nm size to compete with the densities of current RAM technology. A recent development has been to exploit perpendicular shape anisotropy along the easy axis by creating tower structures, with the free layers' thickness (along the easy axis) being larger than its width. Here we use an atomistic model to explore the temperature dependent properties of thin cylindrical MRAM towers of 5 nm diameter while scaling down the free layer from 48 to 8 nm thick. We find thermal fluctuations are a significant driving force for the switching mechanism at operational temperatures by analysing the switching field distribution from hysteresis data. We find that a reduction of the free layer thickness below 18 nm rapidly loses shape anisotropy, and consequently stability, even at 0 K. Additionally, there is a change in the switching mechanism as the free layer is reduced to 8 nm. Coherent rotation is observed for the 8 nm free layer, while all taller towers demonstrate incoherent rotation via a propagated domain wall.

摘要

现代随机存取存储器(RAM)的功耗推动了低功耗非易失性磁性随机存取存储器(MRAM)的发展。基于CoFeB/MgO磁性隧道结的MRAM在缩小到20纳米以下尺寸以与当前RAM技术的密度竞争时,必须满足高热稳定性和低写入电流的要求。最近的一项进展是通过创建塔状结构来利用沿易轴的垂直形状各向异性,自由层的厚度(沿易轴)大于其宽度。在这里,我们使用原子模型来探索直径为5纳米的薄圆柱形MRAM塔的温度相关特性,同时将自由层厚度从48纳米缩小到8纳米。通过分析磁滞数据中的开关场分布,我们发现热涨落在工作温度下是开关机制的一个重要驱动力。我们发现,即使在0 K时,自由层厚度减小到18纳米以下也会迅速失去形状各向异性,从而导致稳定性下降。此外,随着自由层减小到8纳米,开关机制也会发生变化。对于8纳米的自由层,观察到相干旋转,而所有更高的塔则通过传播的畴壁表现出非相干旋转。

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