Tsioptsias Costas, Fardis Dimitrios, Ntampou Xanthi, Tsivintzelis Ioannis, Panayiotou Costas
Department of Chemical Engineering, Aristotle University of Thessaloniki, 54124 Thessaloniki, Greece.
Polymers (Basel). 2023 Apr 11;15(8):1843. doi: 10.3390/polym15081843.
Evaluation and understanding of the thermal behavior of polymers is crucial for many applications, e.g., polymer processing at relatively high temperatures, and for evaluating polymer-polymer miscibility. In this study, the differences in the thermal behavior of poly(vinyl alcohol) (PVA) raw powder and physically crosslinked films were investigated using various methods, such as thermogravimetric analysis (TGA) and derivative TGA (DTGA), differential scanning calorimetry (DSC), Fourier transform infrared spectroscopy (FTIR) and X-ray diffraction (XRD). Various strategies were adopted, e.g., film casting from PVA solutions in HO and DO and heating of samples at carefully selected temperatures, in order to provide insights about the structure-properties relationship. It was found that the physically crosslinked PVA film presents an increased number of hydrogen bonds and increased thermal stability/slower decomposition rate compared to the PVA raw powder. This is also depicted in the estimated values of specific heat of thermochemical transition. The first thermochemical transition (glass transition) of PVA film, as for the raw powder, overlaps with mass loss from multiple origins. Evidence for minor decomposition that occurs along with impurities removal is presented. The overlapping of various effects (softening, decomposition, and evaporation of impurities) has led to confusion and apparent consistencies, e.g., from the XRD, it is derived that the film has decreased crystallinity, and apparently this is in agreement with the lower value of heat of fusion. However, the heat of fusion in this particular case has a questionable meaning.
评估和理解聚合物的热行为对于许多应用至关重要,例如在相对高温下的聚合物加工以及评估聚合物-聚合物的混溶性。在本研究中,使用热重分析(TGA)和微商热重分析(DTGA)、差示扫描量热法(DSC)、傅里叶变换红外光谱(FTIR)和X射线衍射(XRD)等各种方法研究了聚乙烯醇(PVA)原料粉末和物理交联膜热行为的差异。采用了各种策略,例如从PVA在H₂O和D₂O中的溶液流延成膜以及在精心选择的温度下加热样品,以便深入了解结构-性能关系。结果发现,与PVA原料粉末相比,物理交联的PVA膜呈现出更多的氢键,热稳定性增加/分解速率减慢。这也体现在热化学转变比热的估计值中。PVA膜的第一次热化学转变(玻璃化转变)与原料粉末一样,与多种来源的质量损失重叠。给出了伴随杂质去除而发生的轻微分解的证据。各种效应(软化、分解和杂质蒸发)的重叠导致了混淆和明显的一致性,例如,从XRD得出膜的结晶度降低,显然这与较低的熔化热数值一致。然而,在这种特殊情况下,熔化热的意义值得怀疑。