Carbonell-Blasco María Pilar, Moyano María Alejandra, Hernández-Fernández Carlota, Sierra-Molero Francisco J, Pastor Isidro M, Alonso Diego A, Arán-Aís Francisca, Orgilés-Calpena Elena
Footwear Technology Centre, Campo Alto Campo, Elda, 03600 Alicante, Spain.
Department of Organic Chemistry, Institute of Organic Synthesis (ISO), Faculty of Sciences, University of Alicante, P.O. Box 99, 03080 Alicante, Spain.
Polymers (Basel). 2023 Dec 20;16(1):21. doi: 10.3390/polym16010021.
Covalent adaptable networks (CANs) represent a pioneering advance in polymer science, offering unprecedented versatility in materials design. Unlike conventional adhesives with irreversible bonds, CAN-based polyurethane adhesives have the unique ability to undergo chemical restructuring through reversible bonds. One of the strategies for incorporating these types of reactions in polyurethanes is by functionalisation with Diels-Alder (DA) adducts. By taking advantage of the reversible nature of the DA chemistry, the adhesive undergoes controlled crosslinking and decrosslinking processes, allowing for precise modulation of bond strength. This adaptability is critical in applications requiring reworkability or recyclability, as it allows for easy disassembly and reassembly of bonded components without compromising the integrity of the material. This study focuses on the sustainable synthesis and characterisation of a solvent-based polyurethane adhesive, obtained by functionalising a polyurethane prepolymer with DA diene and dienophiles. The characterisation of the adhesives was carried out using different experimental techniques: nuclear magnetic resonance spectroscopy (NMR), Brookfield viscosity, differential scanning calorimetry (DSC), thermogravimetric analysis (TGA) and T-peel strength testing of leather/adhesive/rubber joints to determine the adhesive properties, both before and after the application of external stimuli. The conversion of both the DA and retro-Diels-Alder (r-DA) reactions was confirmed by H-NMR. The adhesive properties were not altered by the functionalisation of the adhesive prepolymer, showing similar thermal resistance and good rheological and adhesive properties, even exceeding the most demanding technical requirements for upper-to-sole joints in footwear. After the application of an external thermal stimuli, the bonded materials separated without difficulty and without damage, thus facilitating their separation, recovery and recycling.
共价自适应网络(CANs)代表了聚合物科学的一项开创性进展,在材料设计方面提供了前所未有的多功能性。与具有不可逆键的传统粘合剂不同,基于CAN的聚氨酯粘合剂具有通过可逆键进行化学重组的独特能力。将这类反应引入聚氨酯的策略之一是用狄尔斯-阿尔德(DA)加合物进行功能化。利用DA化学的可逆性质,粘合剂会经历可控的交联和解交联过程,从而实现对粘结强度的精确调节。这种适应性在需要可返工性或可回收性的应用中至关重要,因为它允许在不损害材料完整性的情况下轻松拆卸和重新组装粘结部件。本研究聚焦于一种溶剂型聚氨酯粘合剂的可持续合成与表征,该粘合剂是通过用DA二烯和亲双烯体对聚氨酯预聚物进行功能化而获得的。使用不同的实验技术对粘合剂进行表征:核磁共振光谱(NMR)、布鲁克菲尔德粘度、差示扫描量热法(DSC)、热重分析(TGA)以及皮革/粘合剂/橡胶接头的T型剥离强度测试,以确定在施加外部刺激之前和之后的粘合性能。通过H-NMR证实了DA反应和逆狄尔斯-阿尔德(r-DA)反应的转化。粘合剂预聚物的功能化并未改变粘合性能,显示出相似的耐热性以及良好的流变学和粘合性能,甚至超过了鞋类鞋面与鞋底接头最苛刻的技术要求。在施加外部热刺激后,粘结材料能够轻松分离且无损坏,从而便于它们的分离、回收和再利用。