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首页> 外文期刊>Macromolecules >Highly Enhanced Mesophase Formation in Glassy Poly(L-lactide) at Low Temperatures by Low-Pressure CO2 That Provides Moderately Increased Molecular Mobility
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Highly Enhanced Mesophase Formation in Glassy Poly(L-lactide) at Low Temperatures by Low-Pressure CO2 That Provides Moderately Increased Molecular Mobility

机译:低温下通过低压二氧化碳在玻璃态聚(L-丙交酯)中高度增强的中间相形成,从而适度增加了分子迁移率

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The mesophase structuring in melt-quenched poly(L-lactide) (PLLA) treated in low-pressure CO2 at 2 MPa and 0-35 degrees C was investigated by using infrared spectroscopy, differential scanning calorimetry (DSC), temperature-modulated DSC, and atomic force microscopy (AFM). It was found that the mesophase formation in glassy PLLA was significantly enhanced, in particular at lower temperature (0 degrees C), which promoted a distinctly faster formation rate. AFM results revealed that the CO2-enhanced mesophase exhibited nodular morphology with dramatically increased nucleation density. A framework of multistage model in combination with the moderately improved molecular mobility exerted by CO2 was proposed to explain the main findings. Because of the moderate molecular mobility, a tremendous number of metastable mesomorphic layers were formed and stabilized by the accompanying development of the rigid amorphous fraction (RAF), leading to the immobilization of the remaining mobile amorphous fraction (MAF). The mesomorphic phases were converted to more stable crystals via cooperative structural reorganization upon the devitrification of the RAF, requiring high chain mobility, showing time and temperature dependence. Consequently, the amorphous PLLA transiently transformed to the mesophase before transforming into the crystal during treating at a relatively high temperature (35 degrees C). Alternatively, upon heating, the mesophase underwent disordering reorganization to form active crystallite, profoundly promoting the cold crystallization of the surrounding restored MAF, resulting in obviously depressed cold crystallization temperatures. The present results have important implications in understanding and regulation of the crystallization of polymers.
机译:利用红外光谱,差示扫描量热法(DSC),温度调制DSC,和原子力显微镜(AFM)。发现玻璃态PLLA的中间相形成显着增强,特别是在较低温度(0℃)下,这明显促进了更快的形成速率。 AFM结果表明,CO2增强的中间相呈结节状,成核密度显着增加。提出了一个多阶段模型的框架,并结合了二氧化碳对分子迁移的适度改善,以解释主要发现。由于中等的分子迁移率,随之而来的刚性无定形馏分(RAF)的形成形成并稳定了大量亚稳的介晶层,从而固定了其余的可移动无定形馏分(MAF)。在RAF失透后,通过协同结构重组,介晶相转变为更稳定的晶体,需要高链迁移率,表现出时间和温度依赖性。因此,在相对较高的温度(35℃)下处理期间,非晶态PLLA在转变为晶体之前瞬时转变为中间相。或者,在加热时,中间相进行无序重组以形成活性微晶,从而显着促进周围恢复的MAF的冷结晶,从而导致明显降低的冷结晶温度。本结果对理解和调节聚合物结晶具有重要意义。

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