Inelastic Neutron Scattering from Thin Film Biaxially Oriented Polyethylene Terephthalate

非弹性中子散射 聚合物 聚对苯二甲酸乙二醇酯 化学 中子散射 化学物理 非弹性散射 聚乙烯 氢键 密度泛函理论 中子 材料科学 计算化学 散射 分子 复合材料 有机化学 光学 物理 核物理学
作者
Zachary D. Stroupe,Nicholas Strange,Luke L. Daemen,John Z. Larese
出处
期刊:Journal of Physical Chemistry A [American Chemical Society]
卷期号:126 (41): 7491-7501 被引量:1
标识
DOI:10.1021/acs.jpca.2c05397
摘要

Recent interest in emerging processes for polymer manufacturing and bio-based chemistries for direct chemical recycling/upcycling has motivated new research focused on a deeper understanding of atomic-scale polymer properties and how they influence macroscopic phenomena. Uncovering the fundamental properties of polymers that give rise to macroscopic behavior could enable new pathways for improved recyclability or utilization of alternative "greener" polymer analogues. In this study, the neutron vibrational spectrum was measured for a film of biaxially oriented polyethylene terephthalate (BoPET) using inelastic neutron scattering (INS), to investigate the relationship between the structure and dynamics of a widely used polymer. Compared to conventional spectroscopic techniques, the use of INS is advantageous for polymeric materials due to the absence of selection rules (i.e., all transitions are allowed), broad-band energy range, and considerable sensitivity to hydrogen modes. In order to distinguish the vibrational modes caused by trans and gauche rotational isomerism, the normal modes of vibration were calculated from a density functional theory-optimized structure of crystalline PET (cPET), representative of the all-trans state, and compared with INS from "highly crystalline" PET powder. Although in- and out-of-plane wagging of hydrogens on the ring structure exhibit significant contribution to both BoPET and cPET spectra, the wagging, rocking, and twisting modes of hydrogen on the ethylene glycol group are, in most cases, conformation-specific. These results were further rationalized by investigating the role of hyperconjugation in stabilizing both conformations using the natural bond order method. Through comparison of experimental and calculated INS results, this work provides the fundamental basis for discovering the role of structure and dynamics in shaping the macroscopic properties of PET and polymer analogues.
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