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首页> 外文期刊>Macromolecules >Unfolding of a Single Polymer Chain from the Single Crystal by Air-Phase Single-Molecule Force Spectroscopy: Toward Better Force Precision and More Accurate Description of Molecular Behaviors
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Unfolding of a Single Polymer Chain from the Single Crystal by Air-Phase Single-Molecule Force Spectroscopy: Toward Better Force Precision and More Accurate Description of Molecular Behaviors

机译:通过空相单分子力光谱从单晶从单晶的单个聚合物链展开:朝向更好的力精度和更准确的分子行为描述

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摘要

Understanding the mechanisms of the mechanical deformation of lamellar crystals at the molecular level is of prime importance to rational design of advanced crystalline polymer materials. Single-molecule force spectroscopy (SMFS) can directly characterize molecular behavior and kinetic parameters that are masked in ensemble measurements. However, current SMFS approach cannot sufficiently manipulate a single molecule in air, which is the real working condition for most crystalline polymer materials. Here, we establish an air-phase atomic force microscopy (AFM)-based SMFS method that allows the unfolding of a single helical poly(ethylene oxide) (PEO) chain from the single crystal in air. Our results show that the mechanostability of PEO stem and unfolding potential are significantly enhanced in air compared with the case in liquid. The airphase SMFS method can achieve a much better force precision of 4 pN even at rapid stretching velocity of similar to 400 mu m/s. Moreover, some intermediate states (e.g., the movement of helical loop within the crystal phase), which were not detectable by using liquid-phase SMFS, have been identified by air-phase SMFS. Therefore, this proposed approach opens new ways for investigating the nanomechanical properties and corresponding molecular mechanism of polymer materials used in solvent-free state.
机译:理解层状晶体的机械变形的机制在分子水平上是最重要的,以先进的结晶聚合物材料的合理设计。单分子力谱(SMFS)可以直接表征分子行为以及其他在合奏测量掩蔽动力学参数。然而,当前的SMFS方法不能充分地操纵在空气中的单个分子,这对于大多数结晶聚合物材料的真实的工作条件。在这里,我们建立的空气相的原子力显微镜(AFM)基SMFS方法,其允许单个螺旋聚(环氧乙烷)从在空气中的单晶(PEO)链的展开。我们的研究结果表明,PEO的mechanostability茎,展开潜在的空气显著加强与液体的情况相比。该airphase SMFS方法甚至可以在相似的400微米快速拉伸速度达到4的PN好得多的精度力/秒。此外,一些中间状态(例如,螺旋形环的结晶相内的移动),该检测不到通过使用液相SMFS,已经确定通过空气相SMFS。因此,此建议的方法将打开调查纳米力学性能和相应的在无溶剂的状态下使用的聚合物材料的分子机制的新途径。

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  • 来源
    《Macromolecules》 |2018年第18期|共9页
  • 作者单位

    Jilin Univ Coll Chem State Key Lab Supramol Struct &

    Mat Changchun 130012 Jilin Peoples R China;

    Jilin Univ Coll Chem State Key Lab Supramol Struct &

    Mat Changchun 130012 Jilin Peoples R China;

    Jilin Univ Coll Chem State Key Lab Supramol Struct &

    Mat Changchun 130012 Jilin Peoples R China;

    Jilin Univ Coll Chem State Key Lab Supramol Struct &

    Mat Changchun 130012 Jilin Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 高分子化学(高聚物);
  • 关键词

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