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Synchronization of pairwise-coupled, identical, relaxation oscillators based on metal-insulator phase transition devices: A model study

机译:基于金属-绝缘子相变器件的成对耦合,相同张弛振荡器的同步:模型研究

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摘要

Computing with networks of synchronous oscillators has attracted wide-spread attention as novel materials and device topologies have enabled realization of compact, scalable and low-power coupled oscillatory systems. Of particular interest are compact and low-power relaxation oscillators that have been recently demonstrated using MIT (metal-insulator-transition) devices using properties of correlated oxides. Further the computational capability of pairwise coupled relaxation oscillators has also been shown to outperform traditional Boolean digital logic circuits. This paper presents an analysis of the dynamics and synchronization of a system of two such identical coupled relaxation oscillators implemented with MIT devices. We focus on two implementations of the oscillator: (a) a D-D configuration where complementary MIT devices (D) are connected in series to provide oscillations and (b) a D-R configuration where it is composed of a resistor (R) in series with a voltage-triggered state changing MIT device (D). The MIT device acts like a hysteresis resistor with different resistances in the two different states. The synchronization dynamics of such a system has been analyzed with purely charge based coupling using a resistive (R_C) and a capacitive (C_C) element in parallel. It is shown that in a D-D configuration symmetric, identical and capaci-tively coupled relaxation oscillator system synchronizes to an anti-phase locking state, whereas when coupled resistively the system locks in phase. Further, we demonstrate that for certain range of values of R_C and C_C, a bistable system is possible which can have potential applications in associative computing. In D-R configuration, we demonstrate the existence of rich dynamics including non-monotonic flows and complex phase relationship governed by the ratios of the coupling impedance. Finally, the developed theoretical formulations have been shown to explain experimentally measured waveforms of such pairwise coupled relaxation oscillators.
机译:由于新型材料和设备拓扑已实现紧凑,可扩展且低功耗的耦合振荡系统,因此使用同步振荡器网络进行计算已引起广泛关注。特别令人关注的是紧凑和低功耗的张弛振荡器,最近已使用具有相关氧化物特性的MIT(金属-绝缘体过渡)器件进行了演示。此外,还显示了成对耦合张弛振荡器的计算能力优于传统的布尔数字逻辑电路。本文介绍了用MIT器件实现的两个相同耦合弛豫振荡器的系统动力学和同步分析。我们关注振荡器的两种实现方式:(a)DD配置,其中互补的MIT器件(D)串联连接以提供振荡;(b)DR配置,其由与电阻串联的电阻器(R)组成。电压触发状态改变MIT设备(D)。 MIT器件的作用就像一个磁滞电阻,在两种不同状态下具有不同的电阻。已经使用并联的电阻(R_C)和电容(C_C)元件通过基于纯电荷的耦合对这种系统的同步动力学进行了分析。结果表明,在D-D配置中,对称,相同且电容耦合的张弛振荡器系统同步到反相锁定状态,而在电阻耦合时,系统锁定同相。此外,我们证明了对于R_C和C_C值的特定范围,双稳态系统是可能的,该系统在关联计算中可能具有潜在的应用。在D-R配置中,我们证明了存在丰富的动力学,包括非单调流动和受耦合阻抗比控制的复杂相位关系。最后,已显示出开发的理论公式可解释此类成对耦合弛豫振荡器的实验测量波形。

著录项

  • 来源
    《Journal of Applied Physics》 |2015年第5期|054902.1-054902.14|共14页
  • 作者单位

    School of Electrical and Computer Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332, USA;

    Department of Electrical Engineering, Pennsylvania State University, University Park, Pennsylvania 16802, USA;

    Department of Electrical Engineering, Pennsylvania State University, University Park, Pennsylvania 16802, USA;

    School of Electrical and Computer Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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