由聚酯/聚醚多元醇合成的可生物降解热塑性聚氨酯压敏胶

IF 2.7 3区 化学 Q2 POLYMER SCIENCE
Yaqi Cao, Xinyan Wang, Liwen Sun, Jia Zhang, Supei Hu, Haibin Yu
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引用次数: 0

摘要

可再生和可降解的压敏胶(psa)已成为粘合剂行业中有前途的绿色替代品,解决了石油资源枯竭和塑料污染的挑战。本工作旨在设计和制备高性能可生物降解的生物基热塑性聚氨酯压敏胶(TPU-PSAs),以解决大多数PSAs不可降解、不可再生、不可回收的问题。通过无溶剂一步聚合工艺,我们以不同NCO/OH比的聚乳酸二醇(PLA)、聚己内酯二醇(PCL)和聚四甲基醚乙二醇(PTMEG)多元醇为原料合成了生物基tpu - psa。通过对微相分离形态、粘弹性响应和宏观粘附行为的相关性分析,建立了体系的结构-性能关系,促进了可持续胶粘剂的合理设计。值得注意的是,HS (30)/0.8 (NCO/OH = 0.8)表现出优异的剥离强度(7.5 N/cm),并具有良好的生物降解性(8周内降解56.4%)。同时,HS (30)/1 (NCO/OH = 1)在不需要交联剂的情况下,在玻璃基板上表现出优异的抗剪切性能(368 kPa)。这些tpu - psa通过控制微相分离,展示了可调粘弹性特性的独特组合,使其成为要求生物降解性、可回收性和可再生性的可持续粘合剂应用的有希望的候选者。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Biodegradable Thermoplastic Polyurethane Pressure Sensitive Adhesives Synthesized From Polyester/Polyether Polyol

Renewable and degradable pressure-sensitive adhesives (PSAs) have emerged as promising green alternatives in the adhesive industry, addressing both petroleum resource depletion and plastic pollution challenges. This work is to provide a design and preparation of high-performance biodegradable bio-based thermoplastic polyurethane pressure-sensitive adhesive(TPU-PSAs) to solve the problem that most PSAs are nondegradable, nonrenewable, and nonrecyclable. Through a solvent-free one-step polymerization process, we synthesized bio-based TPU-PSAs using polylactide diol (PLA), polycaprolactone diol (PCL), and polytetramethylene ether glycol (PTMEG) polyols with varying NCO/OH ratios. Through the correlation analysis of microphase separation morphology, viscoelastic response, and macroscopic adhesion behavior, the structure-performance relationship of the system was established, which promoted the rational design of sustainable adhesives. Notably, HS (30)/0.8 (NCO/OH = 0.8) demonstrated exceptional peel strength (7.5 N/cm) coupled with substantial biodegradability (56.4% degradation within 8 weeks). Meanwhile, HS (30)/1 (NCO/OH = 1) exhibited superior shear resistance (368 kPa on glass substrates) without requiring cross-linking agents. These TPU-PSAs showcase a unique combination of tunable viscoelastic properties through controlled microphase separation, positioning them as promising candidates for sustainable adhesive applications that demand biodegradability, recyclability, and renewability.

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来源期刊
Journal of Applied Polymer Science
Journal of Applied Polymer Science 化学-高分子科学
CiteScore
5.70
自引率
10.00%
发文量
1280
审稿时长
2.7 months
期刊介绍: The Journal of Applied Polymer Science is the largest peer-reviewed publication in polymers, #3 by total citations, and features results with real-world impact on membranes, polysaccharides, and much more.
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