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首页> 外文期刊>Macromolecules >Critical Dependence of Molecular Weight on Thermoresponsive Behavior of Diblock Copolymer Worm Gels in Aqueous Solution
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Critical Dependence of Molecular Weight on Thermoresponsive Behavior of Diblock Copolymer Worm Gels in Aqueous Solution

机译:分子量对水溶液中二嵌段共聚物蠕虫凝胶热响应性能的临界依赖性

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Reversible addition-fragmentation chain transfer (RAFT) aqueous dispersion polymerization of 2-hydroxypropyl methacrylate was used to prepare three poly(glycerol monomethacrylate)(x)-poly(2-hydroxypropyl methacrylate)(y) (denoted G(x)-H-y or PGMA-PHPMA) diblock copolymers, namely G(37)-H-80, G(54)-H-140, and G(71)-H-200 H-200. composition to ensure that a pure worm phase was obtained in each case, A master phase diagram was used to select each copolymer as confirmed by transmission electron microscopy (TEM) and small-angle x-ray scattering (SAXS) studies. The latter technique indicated a mean worm cross-sectional diameter (or worm width) ranging from 11 to 20 nm as the mean degree of polymerization (DP) of the hydrophobic PHPMA block was increased from 80 to 200. These copolymer worms form soft hydrogels at 20 degrees C that undergo degelation on cooling. This thermoresponsive behavior was examined using variable temperature DLS, oscillatory rheology, and SAXS. A 10% w/w G(37)-H-80 worm dispersion dissociated to afford an aqueous solution of molecularly dissolved copolymer chains at 2 degrees C; on returning to ambient temperature, these chains aggregated to form first spheres and then worms, with the original gel strength being recovered. In contrast, the G(54)-H-140 and G(71)-H-200 worms each only formed spheres on cooling to 2 degrees C, with thermoreversible (de)gelation being observed in the former case. The sphere-to-worm transition for G(54)-H-140 was monitored by variable temperature SAXS: these experiments indicated the gradual formation of longer worms at higher temperature, with a concomitant reduction in the number of spheres, suggesting worm growth via multiple 1D sphere-sphere fission events. DLS studies indicated that a 0.1% w/w aqueous dispersion of G(71)-H-200 worms underwent an irreversible worm-to-sphere transition on cooling to 2 degrees C. Furthermore, irreversible degelation over the time scale of the experiment was also observed during rheological studies of a 10% w/w G(71)-H-200 worm dispersion. Shear-induced polarized light imaging (SIPLI) studies revealed qualitatively different thermoreversible behavior for these three copolymer worm dispersions, although worm alignment was observed at a shear rate of 10 s(-1) in each case. Subsequently conducting this technique at a lower shear rate of 1 s(-1) combined with ultra small-angle x-ray scattering (USAXS) also indicated that worm branching occurred at a certain critical temperature since an upturn in viscosity, distortion in the birefringence, and a characteristic feature in the USAXS pattern were observed. Finally, SIPLI studies indicated that the characteristic relaxation times required for loss of worm alignment after cessation of shear depended markedly on the copolymer molecular weight.
机译:可逆添加 - 碎片链转移(筏)2-羟丙基甲基丙烯酸酯的水分散聚合制备三个聚(甘油单甲基丙烯酸酯)(x) - 聚(2-羟丙基甲基丙烯酸酯)(Y)(表示为G(x)-HY或PGMA-PHPMA)二嵌段共聚物,即G(37)-H-80,G(54)-H-140和G(71)-H-200H-200。组合物为了确保在每种情况下获得纯蠕虫阶段,使用主相图选择通过透射电子显微镜(TEM)和小角度X射线散射(SAXS)研究所证实的每种共聚物。后一种技术表明,由于疏水性PHPMA块的平均聚合度(DP)的平均聚合度(DP)增加了80至200.这些共聚物蠕虫在柔软水凝胶中增加了平均蠕虫横截面直径(或蠕虫宽度)。 20摄氏度在冷却时进行脱胶。使用可变温度DLS,振荡流变学和萨克斯检查该热响应性行为。脱离的10%w / w g(37)-H-80蠕虫分散,得到2℃的分子溶解的共聚物链的水溶液;在返回环境温度时,这些链聚集形成第一球体,然后具有蠕虫,具有原始的凝胶强度被回收。相反,G(54)-H-140和G(71)-H-200蠕虫在冷却至2摄氏度上仅形成的球体,在前壳中观察到热度(DE)凝胶化。通过可变温度萨克斯监测G(54)-H-140的球形转变:这些实验表明,在较高温度下逐渐形成较长的蠕虫,随着球体数量的伴随地位,表明蠕虫生长多个1D球形 - 球形裂变事件。 DLS研究表明,G(71)-H-200蠕虫的0.1%w / w水分散体在冷却至2℃下进行不可逆的蠕虫 - 球形过渡。此外,在实验的时间等级上不可逆转地脱胶在流变研究期间也观察到10%w / w g(71)-h-200蠕虫分散体。剪切诱导的偏振光成像(SIPLI)研究显示了这三种共聚物蠕虫分散体的定性不同的热可逆行为,尽管在每种情况下以10 s(-1)的剪切速率观察到蠕虫对准。随后以1 s(-1)的较低剪切速率进行该技术,与超小角X射线散射(USAX)组合,也表明,由于粘度的粘度,在双折射中的变形中,蠕虫支化发生在某个临界温度下并且观察到USAXS模式中的特征。最后,SIPLI研究表明,在剪切停止后丧失蠕虫对准所需的特征松弛时间明显依赖于共聚物分子量。

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