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聚合物从腔体喷射到半空间的标度理论。

Scaling Theory of a Polymer Ejecting from a Cavity into a Semi-Space.

作者信息

Hsiao Pai-Yi

机构信息

Department of Engineering and System Science, National Tsing Hua University, Hsinchu 300044, Taiwan.

Institute of Nuclear Engineering and Science, National Tsing Hua University, Hsinchu 300044, Taiwan.

出版信息

Polymers (Basel). 2020 Dec 16;12(12):3014. doi: 10.3390/polym12123014.

Abstract

A two-stage model is developed in order to understand the scaling behaviors of single polymers ejecting from a spherical cavity through a nanopore. The dynamics of ejection is derived by balancing the free energy change with the energy dissipation during a process. The ejection velocity is found to vary with the number of monomers in the cavity, , as mz1/(Nx1D3z1) at the confined stage, and it turns to be m-z2 at the non-confined stage, where is the chain length and the cavity diameter. The exponents are shown to be z1=(3ν-1)-1, z2=2ν and x1=1/3, with ν being the Flory exponent. The profile of the velocity is carefully verified by performing Langevin dynamics simulations. The simulations further reveal that, at the starting point, the decreasing of can be stalled for a good moment. It suggests the existence of a pre-stage that can be explained by using the concept of a classical nucleation theory. By trimming the pre-stage, the ejection time are properly studied by varying , , and ϕ0 (the initial volume fraction). The scaling properties of the nucleation time are also analyzed. The results fully support the predictions of the theory. The physical pictures are given for various ejection conditions that cover the entire parameter space.

摘要

为了理解单链聚合物通过纳米孔从球形腔中喷出的标度行为,我们建立了一个两阶段模型。通过平衡过程中的自由能变化与能量耗散来推导喷出动力学。发现在受限阶段,喷出速度随腔体内单体数量(N)的变化关系为(v\sim N^{z_1}/(N^{x_1}D^{3z_1})),在非受限阶段变为(v\sim N^{-z_2}),其中(N)为链长,(D)为腔体直径。指数(z_1=(3\nu - 1)^{-1}),(z_2 = 2\nu),(x_1 = 1/3),(\nu)为弗洛里指数。通过进行朗之万动力学模拟仔细验证了速度分布。模拟进一步揭示,在起始点,(N)的减小会在一段时间内停止。这表明存在一个可以用经典成核理论的概念来解释的预阶段。通过去除预阶段,通过改变(N)、(D)和(\phi_0)(初始体积分数)来适当地研究喷出时间。还分析了成核时间的标度性质。结果完全支持该理论的预测。给出了涵盖整个参数空间的各种喷出条件下的物理图像。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d999/7766115/d11c5f379b1b/polymers-12-03014-g001.jpg

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