Department of Fibre and Polymer Technology Wallenberg Wood Science Center KTH Royal Institute of Technology Teknikringen 56 Stockholm 10044 Sweden.
Université Grenoble Alpes CNRS CERMAV Grenoble 38000 France.
Adv Sci (Weinh). 2021 May 2;8(12):2100559. doi: 10.1002/advs.202100559. eCollection 2021 Jun.
The sustainable development of engineering biocomposites has been limited due to a lack of bio-based monomers combining favorable processing with high performance. Here, the authors report a novel and fully bio-based transparent wood biocomposite based on green synthesis of a new limonene acrylate monomer from renewable resources. The monomer is impregnated and readily polymerized in a delignified, succinylated wood substrate to form optically transparent biocomposites. The chemical structure of the limonene acrylate enables diffusion into the cell wall, and the polymer phase is both refractive index-matched and covalently linked to the wood substrate. This results in nanostructured biocomposites combining an excellent optical transmittance of 90% at 1.2 mm thickness and a remarkably low haze of 30%, with a high mechanical performance (strength 174 MPa, Young's modulus 17 GPa). Bio-based transparent wood holds great potential towards the development of sustainable wood nanotechnologies for structural applications, where transparency and mechanical performance are combined.
由于缺乏兼具良好加工性能和优异性能的生物基单体,工程生物复合材料的可持续发展受到限制。在这里,作者报道了一种新型的完全基于生物的透明木基生物复合材料,该复合材料基于从可再生资源中绿色合成的新的柠檬烯丙烯酸酯单体。该单体在脱木质素、琥珀酰化的木材基质中浸渍并易于聚合,形成光学透明的生物复合材料。柠檬烯丙烯酸酯的化学结构使其能够扩散到细胞壁中,聚合物相与木材基质折射率匹配且共价结合。这导致纳米结构的生物复合材料在 1.2mm 厚度下具有优异的透光率 90%和低雾度 30%,同时具有高机械性能(强度 174MPa,杨氏模量 17GPa)。生物基透明木材在开发用于结构应用的可持续木材纳米技术方面具有巨大潜力,在这些应用中,透明度和机械性能相结合。