Co-Innovation Center of Efficient Processing and Utilization of Forest Resources, College of Materials Science and Engineering, Nanjing Forestry University, Longpan Road 159, Xuanwu District, Nanjing 210037, China.
Institute of Chemical Industry of Forest Products, Chinese Academy of Forestry, Jiangsu Province Key Laboratory of Biomass Energy and Materials, Nanjing 210042, China.
Int J Biol Macromol. 2022 Oct 31;219:611-625. doi: 10.1016/j.ijbiomac.2022.08.028. Epub 2022 Aug 8.
Soybean meal (SM)-based adhesive can solve the issues of formaldehyde emission and over-reliance of aldehyde-based resins but suffers from poor water resistance, weak adhesion strength, and high brittleness. Herein, a high-performance adhesive inspired by lobster cuticular sclerotization was developed using catechol-rich condensed tannin-functionalized boron nitride nanosheets (CT@BNNSs), amino-containing chitosan (CS), and SM (CT@BNNSs/CS/SM). The oxidative crosslinking between the catechol and amino, initiated by oxygen at high temperatures, formed a strengthened and water-resistant interior network. These strong intermolecular interactions induced by phenol-amine synergy accompanied by the reinforcement of uniformly dispersed BNNSs improved the load transfer and energy dissipation capacity, endowing the adhesive with great cohesion strength. Given these synergistic effects, the biomimetic CT@BNNSs/CS/SM adhesive caused noticeable improvements in water tolerance, mechanical strength, and toughness over the neat SM adhesive, e.g., enhanced wet shear strength (1.46 vs. 0.66 MPa, respectively), boiling water shear strength (0.92 vs. 0.43 MPa, respectively), and debonding work (0.368 vs. 0.113 J, respectively). Thus, this study provided a green and low-cost bionic strategy for the preparation of high-performance biomass adhesives.
豆粕基胶粘剂可以解决甲醛释放和过度依赖醛基树脂的问题,但耐水性差、粘结强度弱、脆性高。受龙虾甲壳硬化启发,本文采用富含邻苯二酚的缩合单宁官能化氮化硼纳米片(CT@BNNSs)、含氨基壳聚糖(CS)和豆粕(SM)制备了高性能胶粘剂(CT@BNNSs/CS/SM)。在高温下,邻苯二酚与氨基之间的氧化交联由氧引发,形成了强化和耐水的内部网络。酚-胺协同作用产生的这些强分子间相互作用以及均匀分散的 BNNSs 的增强作用提高了载荷传递和能量耗散能力,使胶粘剂具有很强的内聚强度。由于这些协同效应,仿生 CT@BNNSs/CS/SM 胶粘剂在耐水性、机械强度和韧性方面明显优于纯豆粕基胶粘剂,例如,湿剪切强度提高了 1.46 倍(分别为 1.46 和 0.66 MPa),沸水剪切强度提高了 1.46 倍(分别为 0.92 和 0.43 MPa),离型功提高了 1.46 倍(分别为 0.368 和 0.113 J)。因此,本研究为制备高性能生物质胶粘剂提供了一种绿色、低成本的仿生策略。