论文标题

VO2 Mott振荡器的尺寸缩放,动力学和电热分叉

Size scaling, dynamics, and electro-thermal bifurcation of VO2 Mott oscillators

论文作者

Bohaichuk, Stephanie M., Kumar, Suhas, Rojo, Miguel Muñoz, Williams, R. Stanley, Islam, Mahnaz, Pitner, Gregory, Jeong, Jaewoo, Samant, Mahesh G., Parkin, Stuart S. P., Pop, Eric

论文摘要

传统的电子设备众所周知,可以提高速度和能源效率,因为它们的尺寸降低到纳米级。然而,对于非线性动力学电路元件,例如Mott Neuron样尖峰振荡器,这种缩放行为尚不清楚,这对于生物启发的计算而言是感兴趣的。在这里,我们表明,将微米尺寸的VO2振荡器缩小到低100 nm的有效尺寸,并使用金属碳纳米管(CNT)电极切割的纳米含量可实现,并不能保证更快的峰值。但是,一个额外的热源,例如来自CNT的焦耳加热,结合小尺寸和热量容量(由CNT触发的绝缘剂 - 金属过渡的狭窄体积定义),由于非线性动态中的电透射率而导致尖峰频率提高约1000 x。这些结果表明,非线性动力学开关在复杂的相空间中运行,可以通过仔细的电热设计来控制,并为设计未来的仿生电子设备提供新的调谐参数。

Traditional electronic devices are well-known to improve in speed and energy-efficiency as their dimensions are reduced to the nanoscale. However, this scaling behavior remains unclear for nonlinear dynamical circuit elements, such as Mott neuron-like spiking oscillators, which are of interest for bio-inspired computing. Here we show that shrinking micrometer-sized VO2 oscillators to sub-100 nm effective sizes, achieved using a nanogap cut in a metallic carbon nanotube (CNT) electrode, does not guarantee faster spiking. However, an additional heat source such as Joule heating from the CNT, in combination with small size and heat capacity (defined by the narrow volume of VO2 whose insulator-metal transition is triggered by the CNT), can increase the spiking frequency by ~1000x due to an electro-thermal bifurcation in the nonlinear dynamics. These results demonstrate that nonlinear dynamical switches operate in a complex phase space which can be controlled by careful electro-thermal design, offering new tuning parameters for designing future biomimetic electronics.

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