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1/f pink chaos in nanopores

机译:1 / f 纳米孔中的粉红色混沌

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Nanopores have been used for myriad applications ranging from water desalination, gas separation, fluidic circuits, DNA sequencing, and preconcentration of ions. In all of these applications noise is an important factor during signal measurement. Noisy signals disrupt the exact measuring signal in almost all of these applications. In this paper, we rationalize whether current oscillations should be classified only as noise or the physical disturbance in ionic charges has some other meaning. We infer that the physical disturbance in ionic charges and the current oscillations are not noise but can be chaos. Chaos is present in the system due to depletion of the ions, created by nonequilibrium anharmonic distribution in the electrostatic potential. In other words, multiple electric potential wells are observed in the nanoporous system. The multiple electric potential wells leads to bi-directional hopping of ions as the ions transport through the pore. The bi-directional hopping results in current oscillations. This paper suggests that chaos exists from a deterministic perspective and that there is no stochastic element leading to current oscillations. We prove this case by considering a simple oscillator model involving the electrostatic and dissipative forces in order to model ionic current. We observed current oscillations even in the absence of a stochastic noise force. Hence, we state that current oscillations in nanopores can be due to chaos as well and not necessarily due to noise. Furthermore, the color associated with the chaotic spectrum is not brown but pink, with 1/f type dynamics similar to the 1/f type pink noise presented by theorists and experimentalists. However, the 1/f type pink chaos exists due to deterministic current oscillations and not due to a stochastic fluctuating noise force.
机译:纳米孔已用于无数应用,包括水脱盐,气体分离,流体回路,DNA测序和离子预浓缩。在所有这些应用中,噪声都是信号测量过程中的重要因素。在几乎所有这些应用中,噪声信号都会干扰精确的测量信号。在本文中,我们合理化了将电流振荡归为噪声还是离子电荷的物理扰动还具有其他含义。我们推断离子电荷的物理扰动和电流振荡不是噪声,而是可能是混乱的。由于离子的耗尽,系统中会出现混沌,这是由静电势中的非平衡非谐波分布产生的。换句话说,在纳米孔系统中观察到多个电势阱。当离子通过孔传输时,多个势阱会导致离子的双向跳变。双向跳变会导致电流振荡。本文建议从确定性的角度来看存在混沌,并且不存在导致电流振荡的随机因素。我们通过考虑涉及静电力和耗散力的简单振荡器模型来建模离子电流,从而证明了这种情况。即使在没有随机噪声力的情况下,我们也观察到电流振荡。因此,我们指出,纳米孔中的电流振荡也可能是由于混乱,而不一定是由于噪声。此外,与混沌光谱相关的颜色不是棕色而是粉红色,其1 / f 型动力学类似于理论家和实验家提出的1 / f 型粉红噪声。但是,1 / f 型粉红色混沌是由于确定性的电流振荡而不是由于随机波动的噪声力引起的。

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