Wallenberg Wood Science Center, Department of Fiber and Polymer Technology, KTH Royal Institute of Technology, SE-10044Stockholm, Sweden.
Materials Chemistry Division, Department of Chemistry, Faculty of Science, University of Helsinki, 00560Helsinki, Finland.
ACS Nano. 2023 Mar 14;17(5):4775-4789. doi: 10.1021/acsnano.2c11220. Epub 2023 Jan 30.
Polymer shape-memory aerogels (PSMAs) are prospects in various fields of application ranging from aerospace to biomedicine, as advanced thermal insulators, actuators, or sensors. However, the fabrication of PSMAs with good mechanical performance is challenging and is currently dominated by fossil-based polymers. In this work, strong, shape-memory bio-aerogels with high specific surface areas (up to 220 m/g) and low radial thermal conductivity (0.042 W/mK) were prepared through a one-step treatment of native wood using an ionic liquid mixture of [MTBD][MMP]/DMSO. The aerogel showed similar chemical composition similar to native wood. Nanoscale spatial rearrangement of wood biopolymers in the cell wall and lumen was achieved, resulting in flexible hydrogels, offering design freedom for subsequent aerogels with intricate geometries. Shape-memory function under stimuli of water was reported. The chemical composition and distribution, morphology, and mechanical performance of the aerogel were carefully studied using confocal Raman spectroscopy, AFM, SAXS/WAXS, NMR, digital image correlation, With its simplicity, sustainability, and the broad range of applicability, the methodology developed for nanoscale reassembly of wood is an advancement for the design of biobased shape-memory aerogels.
聚合物形状记忆气凝胶(PSMAs)在从航空航天到生物医学等各个应用领域都具有广阔的前景,可用作先进的热绝缘体、致动器或传感器。然而,具有良好机械性能的 PSMAs 的制造具有挑战性,目前主要由基于化石的聚合物主导。在这项工作中,通过使用[MTBD][MMP]/DMSO 的离子液体混合物对天然木材进行一步处理,制备了具有高比表面积(高达 220 m/g)和低径向热导率(0.042 W/mK)的强形状记忆生物气凝胶。气凝胶与天然木材具有相似的化学成分。实现了细胞壁和腔室内木材生物聚合物的纳米级空间重排,形成了柔性水凝胶,为后续具有复杂几何形状的气凝胶提供了设计自由度。报道了在水刺激下的形状记忆功能。通过共聚焦拉曼光谱、AFM、SAXS/WAXS、NMR、数字图像相关等方法仔细研究了气凝胶的化学组成和分布、形态和机械性能。该方法用于木材的纳米级重组,具有简单、可持续和广泛的适用性,为设计基于生物的形状记忆气凝胶提供了新的进展。