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用于低表面能基材的改性丙烯酸酯压敏胶粘剂及粘附机理模型

Modified Acrylate Pressure-Sensitive Adhesives for Low-Surface-Energy Substrate and Adhesion Mechanism Models.

作者信息

Shi Lucheng, Shi Haoran, Qian Jun, Shi Yifeng

机构信息

Key Laboratory of Specially Functional Polymeric Materials and Related Technology (Ministry of Education), School of Materials Science and Engineering, East China University of Science and Technology, Shanghai 200237, China.

Shanghai Hongdingfang Science Co., Ltd., Shanghai 200237, China.

出版信息

Polymers (Basel). 2025 Apr 22;17(9):1130. doi: 10.3390/polym17091130.

Abstract

Most acrylate adhesives do not bond well to low-surface-energy substrates (e.g., polyethylene and polypropylene) due to the weak interaction force between the polar adhesive molecules and the substrate. To enhance the adhesion performance on low-surface-energy substrates and investigate the effects of substrate surface energy, roughness, pressure-sensitive adhesive (PSA) surface energy, viscosity, and modulus on adhesion performance, this study modifies the acrylate adhesive by incorporating a hydrogenated-terminated hydroxylated polybutadiene (HHTPB) structure with a double bond at one end. The results demonstrate an enhancement in the adhesion performance of the modified PSAs on High-Density Polyethylene (HDPE). The 24 h peel strength and loop tack increase to 4.88 N/25 mm and 8.14 N/25 mm at 20 °C, respectively, with the failure modes remaining adhesive failure. However, as the temperature increases, the peel strength decreases. The high-temperature resistance of the adhesive improves. Based on the experimental data, a mathematical model is proposed that incorporates both the wetting area and loss factor to predict peel strength. The influence of these two factors on the peel strength of the PSA is dependent on the application temperature of the adhesive.

摘要

由于极性粘合剂分子与基材之间的相互作用力较弱,大多数丙烯酸酯粘合剂与低表面能基材(如聚乙烯和聚丙烯)的粘结效果不佳。为了提高在低表面能基材上的粘附性能,并研究基材表面能、粗糙度、压敏胶(PSA)表面能、粘度和模量对粘附性能的影响,本研究通过引入一端带有双键的氢化封端羟基化聚丁二烯(HHTPB)结构对丙烯酸酯粘合剂进行改性。结果表明,改性后的PSA对高密度聚乙烯(HDPE)的粘附性能有所提高。在20℃时,24小时剥离强度和环形粘性分别提高到4.88 N/25 mm和8.14 N/25 mm,失效模式仍为粘附失效。然而,随着温度升高,剥离强度降低,粘合剂的耐高温性能提高。基于实验数据,提出了一个结合润湿面积和损耗因子来预测剥离强度的数学模型。这两个因素对PSA剥离强度的影响取决于粘合剂的使用温度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/61ac/12073116/c7791887eda7/polymers-17-01130-g001.jpg

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