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Time-domain stability of parametric synchronization in a spin-torque nano-oscillator based on a magnetic tunnel junction

机译:基于磁隧洞结的旋转扭矩纳米振荡器参数同步的时域稳定性

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摘要

We report on time-domain stability of the parametric synchronization in a spin-torque nano-oscillator (STNO) based on a magnetic tunnel junction. Time-domain measurements of the instantaneous frequency (f(i)) of a parametrically synchronized STNO showrandom short-term unlocking of the STNO signal for low injected radio-frequency (RF) power, which cannot be revealed in time-averaged frequency domain measurements. Macrospin simulations reproduce the experimental results and reveal that the random unlocking during synchronization is driven by thermal fluctuations. We show that by using a high injected RF power, random unlocking of the STNO can be avoided. However, a perfect synchronization characterized by complete suppression of phase noise, so-called phase noise squeezing, can be obtained only at a significantly higher RF power. Our macrospin simulations suggest that a lower temperature and a higher positive ratio of the fieldlike torque to the spin transfer torque reduce the threshold RF power required for phase noise squeezing under parametric synchronization.
机译:基于磁隧道结,我们报告了旋转扭矩纳米振荡器(STNO)中参数同步的时域稳定性。用于低注入的射频(RF)功率的参数同步的STNO Showrandom的瞬时频率(F(i))的时域测量,用于低注入的射频(RF)功率,在时间平均频域测量中不能揭示。 MacroSpin模拟再现实验结果,并揭示了同步期间的随机解锁是由热波动驱动的。我们表明,通过使用高注入的RF功率,可以避免STNO的随机解锁。然而,通过完全抑制相位噪声,所谓的相位噪声挤压的完美同步可以仅以明显高的RF功率获得。我们的MacroSpin模拟表明,较低的温度和较高的旋转转矩与旋转传递扭矩的较高的正比率降低了在参数同步下挤压相位噪声所需的阈值RF功率。

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