差示扫描量热法
共价键
材料科学
热固性聚合物
动态力学分析
结晶度
醋酸乙烯酯
高分子化学
热塑性塑料
乙烯-醋酸乙烯酯
化学
甲基丙烯酸酯
热机械分析
复合材料
高分子科学
有机化学
化学工程
共聚物
聚合物
工程类
物理
热膨胀
热力学
作者
Logan M. Fenimore,Mathew J. Suazo,Boran Chen,Stephanie M. Barbon,Hayley A. Brown,Evelyn Auyeung,Colin Li Pi Shan,John M. Torkelson
出处
期刊:Macromolecules
[American Chemical Society]
日期:2025-08-28
卷期号:58 (17): 9494-9503
标识
DOI:10.1021/acs.macromol.5c01213
摘要
Ethylene-vinyl acetate (EVA) copolymers are widely used in a variety of applications from packaging to footwear owing to their balanced and tunable thermomechanical properties. However, thermoset EVAs face tremendous sustainability challenges. While sustainable alternatives in the form of recyclable EVA covalent adaptable networks (CANs) or vitrimers have been reported, no reports exist that study the relationships between the characteristics of EVAs and their CAN counterparts. This study investigates such structure–property relationships between EVAs and their corresponding CANs containing dialkylamine disulfide-based dynamic covalent cross-links. We characterized these EVA CANs via differential scanning calorimetry, dynamic mechanical analysis (DMA), and swelling tests. Our results demonstrated that the crystallinity of EVA CANs decreased compared to their thermoplastic precursors. Swelling experiments revealed gel contents greater than 50%, with most EVA CANs showing values between 65 and 73%. DMA analysis indicated the robustness of the dynamically cross-linked EVAs; the effective cross-link density of EVA CANs increased with increasing vinyl acetate (VA) content yet decreased with increasing melt flow index (MFI) of the precursor EVAs, both results of which align with existing literature reports on thermoset EVAs. The dynamic covalent cross-linker BiTEMPS methacrylate facilitated the recyclability of each EVA CAN independent of the precursor EVA, and each recycled EVA CAN fully reproduced the thermomechanical properties of its predecessor. Our findings highlight the impact of the VA content and MFI on the thermomechanical properties of EVA CANs and provide a foundation for optimizing the design of recyclable EVA materials with desirable thermomechanical properties.
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