Li Boyan, Zhang Jianming, Hu Yun, Liang Yizeng, Ozaki Yukihiro
Department of Chemistry and Research Center for Environment Friendly Polymers, School of Science and Technology, Kwansei-Gakuin University, Sanda, Japan.
Appl Spectrosc. 2006 Feb;60(2):155-61. doi: 10.1366/000370206776023359.
The present study attempts an application of Fourier transform infrared (FT-IR) spectroscopy in conjunction with multivariate curve resolution (MCR) techniques to explore the structural evolution of isotactic polystyrene (iPS) during the cold crystallization process. The focus of the present study is placed on the performance of MCR techniques, e.g., orthogonal projection (OP), alternating least squares (ALS), and fixed-size moving window evolving factor analysis (FSMWEFA), and the interpretability of spectral changes in the investigated chemical process. As a result, valuable information and conclusions about the structural evolution of iPS during the crystallization process can be extracted: when the amorphous phase of iPS changes, the ordering of the phenyl rings takes place first, and then the polymer chains adjust their local conformations to form short 3(1) helix structures. Furthermore, according to intensity profiles of the spectral variations, the ordering of the phenyl rings proceeds more intensely than the formation of ordered local chains, and the structural evolution of iPS occurs even during the induction period. The spectral variations resulting from the conformational changes in the 3(1) helical structures depend on the sequence length of the helical chains: the longer the polymer chain is, the smaller the corresponding band variations are. It has been demonstrated that the combination of FTIR spectroscopy and chemometric MCR techniques is very promising for the analysis of the crystallization process of polymers. MCR is a powerful tool for analyzing and visualizing spectral data and integrating them with other information, making spectral intensity variations more amenable to interpretation in order to explore the molecular dynamics of polymers.
本研究尝试将傅里叶变换红外(FT - IR)光谱与多元曲线分辨(MCR)技术相结合,以探索等规聚苯乙烯(iPS)在冷结晶过程中的结构演变。本研究的重点在于MCR技术的性能,例如正交投影(OP)、交替最小二乘法(ALS)和固定尺寸移动窗口演化因子分析(FSMWEFA),以及所研究化学过程中光谱变化的可解释性。结果,可以提取有关iPS在结晶过程中结构演变的有价值信息和结论:当iPS的非晶相发生变化时,苯环的有序化首先发生,然后聚合物链调整其局部构象以形成短的3(1)螺旋结构。此外,根据光谱变化的强度分布,苯环的有序化比有序局部链的形成更为强烈,并且iPS的结构演变甚至在诱导期就已发生。由3(1)螺旋结构的构象变化引起的光谱变化取决于螺旋链的序列长度:聚合物链越长,相应的谱带变化越小。已经证明,FTIR光谱与化学计量学MCR技术的结合对于分析聚合物的结晶过程非常有前景。MCR是一种用于分析和可视化光谱数据并将其与其他信息整合的强大工具,使光谱强度变化更易于解释,从而探索聚合物的分子动力学。