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首页> 外文期刊>Polymer: The International Journal for the Science and Technology of Polymers >Comparative study of crystallization, semicrystalline morphology, and molecular mobility in nanocomposites based on polylactide and various inclusions at low filler loadings
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Comparative study of crystallization, semicrystalline morphology, and molecular mobility in nanocomposites based on polylactide and various inclusions at low filler loadings

机译:基于聚乳酸的纳米复合物中结晶,半结晶形态和分子迁移率的比较研究及低填料载荷的各种夹杂物

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摘要

In this article, we report effects imposed to polylactide (PLA) by fillers of different geometries and surface chemistry, namely mesoporous silicas, carbon nanotubes (CNT), mixtures of CNT and clays as well as new hybrid particle of the latter two, at low loadings (0.5?5 wt%). The initial scope for the nanocomposites preparation is the improvement of the rate of crystallization, being extremely slow in neat PLA and the study of structure semicrystalline morphology molecular mobility relationship. To that aim, Fourier transform infra red (FTIR) spectroscopy, X-ray diffraction (XRD), differential scanning calorimetry (DSC), polarized optical microscopy (POM) and broadband dielectric spectroscopy (BDS) were employed and evaluated by widely used analysis routes. All nanofillers were found to offer crystallization sites accelerating crystallization. The effect is systematically stronger for the silicas than the CNT-based fillers; moreover, was found to correlate with the weaker and stronger disturbance of the PLA carbonyls (FTIR), respectively, due to interfacial interactions. Comparing to clay/CNT mixture, the hybrid clay/CNT and neat CNTs were found more effective in improving the crystallization rate. Despite the crystallization rate improvement, the degree of crystallinity was not enhanced. Significant alternations in the semicrystalline morphology were recorded in the nanocomposites by POM. Regarding the main results on molecular mobility (DSC, BDS), a slight deceleration of segmental dynamics (glass transition, ? relaxation) was recorded in the nanocomposites, accompanied by an increase in cooperativity. In general, results suggest complex phenomena affecting segmental dynamics, for example constraints imposed by the filler attractions (FTIR, DSC) and spatial confinement effects on the amorphous polymer between the fillers or crystals, that tend to decelerate and accelerate the dynamics, respectively. BDS enabled the recording of an additional clay-induced relaxation in the nanocomposites that shows cooperative characteristics and a quite high strength, most possibly arising from the interfacial polymer. Despite the lack of microscopy measurements for morphology, the combined data showed indirect although strong indications for the best dispersion in the PLA matrix at 1 wt% particle loading, independently from the type of the filler.
机译:在这篇文章中,我们报道了不同几何形状和表面化学的填料对聚乳酸(PLA)的影响,这些填料包括介孔二氧化硅、碳纳米管(CNT)、CNT和粘土的混合物,以及后两者在低负载(0.5-5 wt%)下的新杂化粒子。纳米复合材料制备的初始范围是提高结晶速率,在纯PLA中非常缓慢,以及研究结构-半结晶形态-分子迁移率关系。为此,采用了傅里叶变换红外光谱(FTIR)、X射线衍射(XRD)、差示扫描量热法(DSC)、偏光显微镜(POM)和宽带介电光谱(BDS),并通过广泛使用的分析路线进行了评估。研究发现,所有纳米填料都提供了加速结晶的结晶位点。与基于CNT的填料相比,硅质填料的作用更强;此外,还发现,由于界面相互作用,PLA羰基化合物(FTIR)的干扰分别较弱和较强。与粘土/碳纳米管混合物相比,混合粘土/碳纳米管和纯碳纳米管在提高结晶速率方面更有效。尽管结晶速率有所提高,但结晶度没有提高。通过POM,纳米复合材料中的半结晶形态发生了显著变化。关于分子迁移率(DSC、BDS)的主要结果,纳米复合材料中的节段动力学(玻璃化转变、弛豫)略有减速,同时协同性增加。总的来说,结果表明影响节段动力学的复杂现象,例如填料吸引力(FTIR、DSC)施加的约束,以及填料或晶体之间对无定形聚合物的空间限制效应,它们分别倾向于减速和加速动力学。BDS能够记录纳米复合材料中粘土诱导的额外松弛,显示出协同特性和相当高的强度,最有可能由界面聚合物引起。尽管缺乏形态学的显微镜测量,但综合数据显示,在1 wt%的颗粒负载下,PLA基质中的最佳分散性与填料类型无关,这是间接的,尽管是强有力的指示。

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