基于忆阻电路同步的微流控传感器

M. Bucolo, A. Buscarino, L. Fortuna, S. Gagliano, Giovanna Stella
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引用次数: 2

摘要

近年来,两相微流体在化学、生物和医学等各个科学领域做出了贡献。特别是,从两种不混相流体或流体与微粒的混合物中获得的两相流,因其在实现逻辑门和可编程器件中的可能应用而受到关注。此外,它们在微通道网络中的行为尚未得到很好的研究,即使在文献中提出了一些实验结果,但远未建立能够驱动流量控制的成熟框架。近年来,采用混沌同步的方法对两相微流控装置的动力学特性进行了表征,得到了气泡流动的行为模型。从这些结果出发,本文提出了用由电容和忆阻器件组成的简单非线性双元电路来模拟两相微流体中气泡流动行为的可能性。该电路能够将其动力学与微流体设置行为同步,因此可以作为流体动力学状态的定性传感器。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Microfluidic sensors based on memristive circuits synchronization
In the recent years, two-phase microfluidics has contributed to various scientific areas such as chemistry, biology and medicine. In particular, two-phase flows, obtained from two immiscible fluids or a mix of fluid and microparticles, gained attention for their possible application in implementing logic gates and programmable devices. Moreover, their behavior in networks of microchannels is still not well studied, even if some experimental results are presented in literature but far from well-established framework that can drive to the flow control. Recently, the dynamics of two-phase microfluidic setups has been characterized by means of chaos synchronization obtaining a behavioral model of the bubble flow. Starting from these results, in this contribution the possibility to model the bubble flow behavior in a two-phase microfluidic with a simple nonlinear two-element circuit composed by a capacitor and a memristive device. The circuit is able to synchronize its dynamics to the microfluidic setup behavior, therefore acting as a qualitative sensor of the hydrodynamic regime.
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