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Multiple transitions between various ordered and disordered states of a helical polymer under stretching

机译:拉伸下螺旋聚合物的各种有序和无序状态之间的多重转变

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Using coarse-grained molecular dynamic simulations, we systematically investigate the conformational transitions of a helical polymer chain under tension. While a typical helix-coil transition is derived by our simulation with the absence of the stretching and varying temperature, the chain behaviors become more interesting and complicated when the force is applied. Specifically, when the temperature is low enough relative to the chain rigidity, the polymer is solid-like and displays a series of stepwise conformational transitions on the force-extension curve. We introduce a chain disorder parameter to capture the essence of these transitions. Detailed investigation indicates that the first few transitions correspond to the breaking of the helices, while the last one denotes a transition from a fully disordered state to an all-trans ordered conformation. By increasing the temperature, the thermal fluctuation makes the chain enter a liquid-like state, in which the initial weak stretching induces extra helix formation, followed by the force-induced helix breaking and the transition to the all-trans state. In contrast to the solid-like state, the liquid-like chain always adopts a mixed conformation with both helical and disordered regions. Further increasing the temperature makes the chain fully flexible and thus no helices can form at such a gas-like stage. We further study the relaxation behaviors of the polymer by decreasing the force and find hysteresis for the solid-like cases. Finally, we compare our simulation results with experiments in a semi-quantitative fashion and get quite good agreement. Published by AIP Publishing.
机译:使用粗粒化分子动态模拟,我们系统地研究了张力下螺旋聚合物链的构象过渡。虽然我们的模拟通过没有拉伸和变化温度来源的典型螺旋线圈转变,但是当施加力时,链行为变得更加有趣和复杂。具体地,当温度相对于链刚度足够低时,聚合物是固体的,并且在力 - 延伸曲线上显示一系列逐步构象过渡。我们介绍一个链紊乱参数以捕捉这些过渡的本质。详细研究表明,前几个转换对应于螺旋的断开,而最后一个转换表示从完全无序状态到全反常有序构象的转变。通过增加温度,热波动使得链进入液体状状态,其中初始弱拉伸诱导额外的螺旋形成,然后是力诱导的螺旋断裂和转变到全转变状态。与固体状状态相反,液体状链总是采用螺旋和无序区域的混合构象。进一步提高温度使得链完全柔韧,因此在这种气体阶段不能形成螺旋。我们进一步通过降低力来研究聚合物的松弛行为,并找到固体样壳体的滞后。最后,我们将模拟结果与半定量时尚的实验进行比较,并得到非常好的协议。通过AIP发布发布。

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