Guan Hao, Zhang Chi, Tu Kunkun, Dai Xinjian, Wang Xin, Wang Xiaoqing
Research Institute of Wood Industry, Chinese Academy of Forestry, Beijing 100091, China.
Department of Mechanical and Process Engineering, ETH Zurich, 8092 Zurich, Switzerland.
ACS Appl Mater Interfaces. 2024 Apr 10;16(14):18173-18183. doi: 10.1021/acsami.4c01173. Epub 2024 Apr 1.
The excessive consumption of fossil-based plastics and the associated environmental concerns motivate the increasing exploitation of sustainable biomass-based materials for advanced applications. Natural wood-derived lamellar wood sponges via a top-down approach have recently attracted significant attention; however, the insufficient compressive fatigue resistance and lack of structural stability in water limit their wide applications. Here, we report a facile chemical cross-linking strategy to tackle these challenges, by which the cellulose fibrils in the lamellas are covalently bridged to enhance their connectivity. The cross-linked wood sponges demonstrate high compressibility up to 70% strain and exceptional compressive fatigue resistance (∼5% plastic deformation after 10,000 cycles at 50% strain). The interfibrillar cross-linking inhibits the swelling of cellulose fibrils and preserves the arch-shaped lamellas of the sponge in water, endowing the wood sponge with excellent wet stability. Such highly elastic and wet-stable lamellar wood sponges offer a sustainable alternative to synthetic polymer-based sponges used in diverse applications.
基于化石的塑料的过度消费以及相关的环境问题,促使人们越来越多地开发可持续的生物质基材料用于先进应用。通过自上而下的方法制备的天然木材衍生的层状木海绵最近引起了广泛关注;然而,其抗压疲劳性不足以及在水中缺乏结构稳定性限制了它们的广泛应用。在此,我们报告了一种简便的化学交联策略来应对这些挑战,通过该策略,层片中的纤维素原纤维被共价桥接以增强它们的连通性。交联的木海绵在高达70%应变下表现出高压缩性以及出色的抗压疲劳性(在50%应变下进行10000次循环后塑性变形约为5%)。原纤维间的交联抑制了纤维素原纤维的膨胀,并在水中保留了海绵的拱形薄片,赋予木海绵优异的湿稳定性。这种高弹性且湿稳定的层状木海绵为各种应用中使用的合成聚合物基海绵提供了一种可持续的替代品。