Zhumanazarova Gaziza M, Sarsenbekova Akmaral Zh, Abulyaissova Lyazzat K, Figurinene Irina V, Zhaslan Rymgul K, Makhmutova Almagul S, Sotchenko Raissa K, Aikynbayeva Gulzat M, Hranicek Jakub
Department of Chemical Technology and Ecology, Karaganda Industrial University, Temirtau 101400, Kazakhstan.
Chemistry Faculty, Karaganda Buketov University, Karaganda 100024, Kazakhstan.
Polymers (Basel). 2025 Apr 27;17(9):1197. doi: 10.3390/polym17091197.
This research presents the results of a combined numerical and experimental study of the thermal decomposition behavior of copolymers based on polypropylene glycol fumarate phthalate. The thermal decomposition of polymers plays a key role in various fields, such as waste recycling and energy recovery, and in the development of new materials. The objective of this study is to model the degradation kinetics using thermogravimetric data, matrix-based numerical methods, and quantum chemical calculations. To solve the resulting systems of linear algebraic equations (SLAEs), matrix decomposition algorithms (QR, SVD, and Cholesky) were employed, which enabled the determination of activation energy values for the process. Comparison of the activation energy () results obtained using the decomposition method of Cholesky (207.21 kJ/mol), normal equations (205.22 kJ/mol), singular value decomposition (206.23 kJ/mol), and QR decomposition (206.23 kJ/mol) showed minor changes that were associated with the features of each method. Quantum chemical calculations based on density functional theory (DFT) at the B3LYP/6-31G() level were performed to analyze the molecular structure and interpret the IR spectra. This study establishes that the content of functional groups (ether and ester) and the type of chemical bonds exert critical influences on the decomposition mechanism and associated thermal parameters. The results confirm that the polymer's structural architecture governs its thermal stability. The scientific novelty of this work lies in the integration of numerical approximation methods and quantum chemical analysis for investigating the thermal behavior of polymers. This approach is applied for the first time to copolymers of this composition and may be employed in the design of heat-resistant materials for agricultural and environmental applications.
本研究展示了基于富马酸邻苯二甲酸丙二醇酯的共聚物热分解行为的数值与实验相结合的研究结果。聚合物的热分解在诸如废物回收和能量回收等各个领域以及新材料的开发中都起着关键作用。本研究的目的是利用热重数据、基于矩阵的数值方法和量子化学计算对降解动力学进行建模。为求解所得的线性代数方程组(SLAEs),采用了矩阵分解算法(QR、SVD和Cholesky),这使得能够确定该过程的活化能值。使用Cholesky分解法(207.21 kJ/mol)、正规方程(205.22 kJ/mol)、奇异值分解(206.23 kJ/mol)和QR分解(206.23 kJ/mol)获得的活化能()结果比较显示,与每种方法的特点相关的变化较小。基于密度泛函理论(DFT)在B3LYP/6 - 31G()水平上进行了量子化学计算,以分析分子结构并解释红外光谱。本研究确定官能团(醚和酯)的含量和化学键的类型对分解机理及相关热参数有至关重要的影响。结果证实聚合物的结构体系决定其热稳定性。这项工作的科学新颖之处在于将数值近似方法与量子化学分析相结合来研究聚合物的热行为。这种方法首次应用于这种组成的共聚物,可用于农业和环境应用的耐热材料设计。