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Controlling the phase locking of stochastic magnetic bits for ultra-low power computation

机译:控制随机磁位的锁相以进行超低功耗计算

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When fabricating magnetic memories, one of the main challenges is to maintain the bit stability while downscaling. Indeed, for magnetic volumes of a few thousand nm(3), the energy barrier between magnetic configurations becomes comparable to the thermal energy at room temperature. Then, switches of the magnetization spontaneously occur. These volatile, superparamagnetic nanomagnets are generally considered useless. But what if we could use them as low power computational building blocks? Remarkably, they can oscillate without the need of any external dc drive, and despite their stochastic nature, they can beat in unison with an external periodic signal. Here we show that the phase locking of superparamagnetic tunnel junctions can be induced and suppressed by electrical noise injection. We develop a comprehensive model giving the conditions for synchronization, and predict that it can be achieved with a total energy cost lower than 10(-13)?J. Our results open the path to ultra-low power computation based on the controlled synchronization of oscillators.
机译:在制造磁性存储器时,主要挑战之一是在缩小尺寸的同时保持位的稳定性。的确,对于数千纳米(3)的磁性量,磁性结构之间的能垒变得与室温下的热能相当。然后,自发地发生磁化的切换。这些挥发性的超顺磁性纳米磁体通常被认为是无用的。但是,如果我们可以将它们用作低功耗计算的基础呢?值得注意的是,它们可以振荡而无需任何外部直流驱动器,尽管具有随机特性,但它们可以与外部周期性信号一致地跳动。在这里,我们表明,超顺磁隧道结的锁相可以通过电噪声注入来诱导和抑制。我们开发了一个给出同步条件的综合模型,并预测总能量成本低于10(-13)?J即可实现。我们的结果为基于振荡器受控同步的超低功耗计算开辟了道路。

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