Key Laboratory of Green Processing and Functional New Textile Materials of Ministry of Education, Wuhan Textile University, Wuhan 430200, China.
Institute for Frontier Materials, Deakin University, Geelong, Victoria 3216, Australia.
ACS Appl Mater Interfaces. 2023 May 24;15(20):24846-24857. doi: 10.1021/acsami.3c02136. Epub 2023 May 14.
The development of environmentally friendly, green, and nontoxic adhesives with excellent dry and wet adhesion properties is of great attraction. In nature, barnacles and mussels exhibit strong adhesion by secreting a hydroxyl-rich dopa. Inspired by their adhesion mechanism, a simple biobased MAG-PETMP (MP) adhesive was prepared from magnolol (MAG) and pentaerythritol tetra (3-mercaptopropionate) (PETMP) by a thiol-ene click chemistry reaction. MP as an adhesive exhibits high bond strength with other substrates due to hydrogen bonds formed by the abundant hydroxyl groups at the interface and shows an inherent thermosetting network structure. Since MP has a thermosetting network, it exhibits excellent thermal stability, solvent resistance, and high mechanical strength, which make the adhesive stable in a humid environment. The cross-linking degree of MP can be easily controlled by adjusting the molar ratio of MAG and PETMP. Among the synthesized samples, the elongation at break of the MP 1 formulation is 174.27%, which makes it promising for use as a flexible adhesive. Moreover, the inherent antibacterial properties of MAG enable MP to exhibit antimicrobial properties and antibacterial adhesion to some extent. This work provides a simple biomimetic strategy that could enable the application of MAG for adhesives.
开发具有良好干、湿附着力的环保型、绿色型、无毒型胶粘剂具有很大的吸引力。在自然界中,藤壶和贻贝通过分泌富含羟基的多巴来表现出很强的附着力。受其粘附机制的启发,通过巯基-烯点击化学反应,从厚朴酚(MAG)和季戊四醇四(3-巯基丙酸酯)(PETMP)制备了一种简单的生物基 MAG-PETMP(MP)胶粘剂。由于界面处丰富的羟基形成氢键,MP 作为一种胶粘剂与其他基材具有很高的键合力,并表现出固有的热固网络结构。由于 MP 具有热固网络,因此表现出优异的热稳定性、耐溶剂性和高机械强度,使胶粘剂在潮湿环境中稳定。通过调整 MAG 和 PETMP 的摩尔比,可以很容易地控制 MP 的交联度。在所合成的样品中,MP1 配方的断裂伸长率为 174.27%,这使其有望用作柔性胶粘剂。此外,MAG 的固有抗菌性能使 MP 具有一定的抗菌性能和抗菌附着力。这项工作提供了一种简单的仿生策略,可使 MAG 应用于胶粘剂。