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具有动态共价/氢键混合网络的仿生木质素-蛋白质胶粘剂实现了高粘结性能和木质基板的回收利用。

Biomimetic lignin-protein adhesive with dynamic covalent/hydrogen hybrid networks enables high bonding performance and wood-based panel recycling.

机构信息

MOE Key Laboratory of Wooden Material Science and Application & Beijing Key, Laboratory of Wood Science and Engineering, Beijing Forestry University, Beijing 100083, China.

Mechanical Engineering, University of North Texas, Denton, TX 76203, USA.

出版信息

Int J Biol Macromol. 2022 Aug 1;214:230-240. doi: 10.1016/j.ijbiomac.2022.06.042. Epub 2022 Jun 10.

Abstract

Exploring the reusability of wood-based panels is imperative in the wood industry for sustainable development and carbon balance. Non-reusable adhesives make wood-based panel recycling difficult. In this study, inspired by the adhesion and de-adhesion behavior of snail slime, we built dynamic covalent/hydrogen hybrid networks into adhesive system for achieving both high bonding performance and reusability. Specifically, the softwood lignin was purified and pretreated by ultrasonication to form a catechol structure (UAL) and then combined with soybean protein to develop a 100 % bio-based wood adhesive. The catechol structure of UAL formed dynamic covalent bonds (CN) with the amino groups of the protein to improve the water resistance and formed multiple hydrogen bonds as a sacrificial network to improve the toughness of the adhesive. Thus, the wet shear strength of plywood bonded by the resultant adhesive improved by 101.4 % to 1.37 MPa. The adhesive also exhibited flame retardancy (LOI = 37.7 %), mildew resistance (60 h), and antibacterial performance (inhibition zone = 8 mm). Notably, owing to the rearrangement of dynamic covalent/hydrogen hybrid networks and the thermoplastic property of UAL, the resultant adhesive was reusable (3 cycles) and degradable (2 months), which provides a potential method for the reuse of wood-based panels.

摘要

探索木质基板的可重复使用性对于木材行业的可持续发展和碳平衡至关重要。不可重复使用的粘合剂使得木质基板的回收变得困难。在这项研究中,受蜗牛黏液的黏附和脱附行为的启发,我们将动态共价/氢键混合网络构建到粘合剂体系中,以实现高黏合性能和可重复使用性。具体来说,我们通过超声处理对软木木质素进行纯化和预处理,形成儿茶酚结构(UAL),然后与大豆蛋白结合,开发出 100%生物基木材粘合剂。UAL 的儿茶酚结构与蛋白质的氨基形成动态共价键(CN),以提高耐水性,并形成多个氢键作为牺牲网络,以提高粘合剂的韧性。因此,由所得粘合剂黏合的胶合板的湿剪切强度提高了 101.4%,达到 1.37 MPa。该粘合剂还具有阻燃性(LOI=37.7%)、防霉性(60 小时)和抗菌性能(抑菌圈=8 毫米)。值得注意的是,由于动态共价/氢键混合网络的重排和 UAL 的热塑性,所得粘合剂是可重复使用的(3 次循环)和可降解的(2 个月),这为木质基板的再利用提供了一种潜在的方法。

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