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Cole-Davidson dynamics of simple chain models

机译:简单链模型的Cole-Davidson动力学

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Rotational relaxation functions of the end-to-end vector of short, freely jointed and freely rotating chains were determined from molecular dynamics simulations. The associated response functions were obtained from the one-sided Fourier transform of the relaxation functions. The Cole-Davidson function was used to fit the response functions with extensive use being made of Cole-Cole plots in the fitting procedure. For the systems studied, the Cole-Davidson function provided remarkably accurate fits [as compared to the transform of the Kohlrausch-Williams-Watts (KWW) function]. The only appreciable deviations from the simulation results were in the high frequency limit and were due to ballistic or free rotation effects. The accuracy of the Cole-Davidson function appears to be the result of the transition in the time domain from stretched exponential behavior at intermediate time to single exponential behavior at long time. Such a transition can be explained in terms of a distribution of relaxation times with a well-defined longest relaxation time. Since the Cole-Davidson distribution has a sharp cutoff in relaxation time (while the KWW function does not), it makes sense that the Cole-Davidson would provide a better frequency-domain description of the associated response function than the KWW function does.
机译:短,自由连接和自由旋转链的端到端向量的旋转弛豫函数是通过分子动力学模拟确定的。相关的响应函数是从松弛函数的单面傅立叶变换中获得的。使用Cole-Davidson函数拟合响应函数,并在拟合过程中广泛使用Cole-Cole图。对于所研究的系统,Cole-Davidson函数提供了非常精确的拟合度(与Kohlrausch-Williams-Watts(KWW)函数的变换相比)。与模拟结果的唯一明显偏差是在高频范围内,并且是由于弹道或自由旋转效应引起的。 Cole-Davidson函数的准确性似乎是时域从中间时间的扩展指数行为过渡到长时间的单指数行为的结果。这种过渡可以用松弛时间的分布和明确定义的最长松弛时间来解释。由于Cole-Davidson分布的弛豫时间有明显的截止时间(而KWW函数没有),因此,与KWW函数相比,Cole-Davidson可以提供更好的频域描述相关响应函数,这是有道理的。

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