用于性能优化的聚合物和可塑化剂的素衍生甲甲酸盐
Gloria Rosetto1, Katherine A Chism1, Luana Cardinale2
1Renewable Resources and Enabling Sciences Center, National Renewable Energy Laboratory, Golden, CO 80401, United States.
概括
生物基甲基甲酸为聚和可塑剂提供了可持续的替代品. 这些化合物可以调整聚乙烯二甲的性能,并提高聚乙烯的性能,减少对石化产品的依赖.
科学领域:
- 绿色化学与可持续材料
- 聚合物科学与工程
- 生物质利用
背景情况:
- 来自酸的芳香碳酸是有价值的生物基建材.
- 目前的聚烯和可塑化剂通常依赖于石化原料.
- 需要具有可调节性质的可持续替代品.
研究的目的:
- 合成和评估素衍生的甲基甲酸作为石化品的替代品.
- 研究它们作为聚乙烯甲酸 (PET) 中的共体的使用.
- 评估它们作为聚乙烯 (PVC) 的增塑剂的有效性.
主要方法:
- 用电化学方法对素单体进行化,以产生甲基甲酸.
- 甲基甲酸与二甲基甲酸的共聚变,形成PET共聚物.
- 作为PVC增塑剂的甲基甲酸的评估.
- 分子动态模拟以预测扩散系数和挥发率.
主要成果:
- 成功合成了二甲基甲酸和二甲基甲酸.
- >25%含有甲基甲酸的PET共聚合物变得无形.
- 在10mol%的负载下,生物衍生共聚物降低了PET的结晶性和化温度.
- 在PVC应用中,生物衍生型塑性剂与石油衍生型塑性剂相匹配或超过.
- 甲基甲酸乙酸的挥发性和扩散性较低,表明使用寿命更长.
结论:
- 利格宁衍生的甲基甲酸盐是异酸盐和酸盐的可行的生物基替代品.
- 这些化合物可以调整PET的性能,并提高PVC的性能.
- 这项研究表明,实现更可持续的聚合物和可塑化剂的途径.
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