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纳米接触涡旋振荡器中的模式生成与符号动力学

Pattern generation and symbolic dynamics in a nanocontact vortex oscillator.

作者信息

Yoo Myoung-Woo, Rontani Damien, Létang Jérémy, Petit-Watelot Sébastien, Devolder Thibaut, Sciamanna Marc, Bouzehouane Karim, Cros Vincent, Kim Joo-Von

机构信息

Centre de Nanosciences et de Nanotechnologies, CNRS, Université Paris-Saclay, 10 boulevard Thomas Gobert, 91120, Palaiseau, France.

Chaire Photonique, LMOPS EA 4423 Laboratory, Université de Lorraine & CentraleSupélec, 2 rue Edouard Belin, F-57070, Metz, France.

出版信息

Nat Commun. 2020 Jan 30;11(1):601. doi: 10.1038/s41467-020-14328-7.

Abstract

Harnessing chaos or intrinsic nonlinear behaviours of dynamical systems is a promising avenue toward unconventional information processing technologies. In this light, spintronic devices are promising because of the inherent nonlinearity of magnetization dynamics. Here, we demonstrate experimentally the potential for chaos-based schemes using nanocontact vortex oscillators by unveiling and characterizing their waveform patterns and symbolic dynamics using time-resolved electrical measurements. We dissociate nonlinear deterministic patterns from thermal fluctuations and show that the emergence of chaos results in the unpredictable alternation of well-defined patterns. With phase-space reconstruction techniques, we perform symbolic analyses of the time series and show that the oscillator exhibits maximal entropy and complexity at the centre of its incommensurate region. This suggests that such vortex-based systems are promising nanoscale sources of entropy that could be exploited for information processing.

摘要

利用动力系统的混沌或内在非线性行为是通往非常规信息处理技术的一条有前途的途径。鉴于此,自旋电子器件因其磁化动力学的固有非线性而颇具前景。在此,我们通过时间分辨电学测量揭示并表征纳米接触涡旋振荡器的波形模式和符号动力学,从而通过实验证明基于混沌的方案的潜力。我们将非线性确定性模式与热涨落分离,并表明混沌的出现导致明确模式的不可预测交替。利用相空间重构技术,我们对时间序列进行符号分析,并表明振荡器在其非 commensurate 区域的中心表现出最大熵和复杂性。这表明这种基于涡旋的系统是有前途的纳米级熵源,可用于信息处理。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f6c3/6992810/eb4d495f367e/41467_2020_14328_Fig1_HTML.jpg

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