ETH Zürich, Institute for Building Materials, Stefano-Franscini-Platz 3, Zurich, 8093, Switzerland.
Empa-Swiss Federal Laboratories for Material Testing and Research, Cellulose & Wood Materials Laboratory, Dübendorf, 8600, Switzerland.
Adv Mater. 2021 Jul;33(28):e2001375. doi: 10.1002/adma.202001375. Epub 2020 Aug 14.
Wood-derived cellulose materials obtained by structure-retaining delignification are attracting increasing attention due to their excellent mechanical properties and great potential to serve as renewable and CO storing cellulose scaffolds for advanced hybrid materials with embedded functionality. Various delignification protocols and a multitude of further processing steps including polymer impregnation and densification are applied resulting in a large range of properties. However, treatment optimization requires a more comprehensive characterization of the developed materials in terms of structure, chemical composition, and mechanical properties for faster progress in the field. Herein, the current protocols for structure-retaining delignification are reviewed and the emphasis is placed on the mechanical characterization at different hierarchical levels of the cellulose scaffolds by experiments and modeling to reveal the underlying structure-property relationships.
由于木材衍生的纤维素材料具有优异的机械性能,并且很有潜力作为可再生和 CO2 储存的纤维素支架,用于具有嵌入式功能的先进混合材料,因此通过结构保留脱木质素获得的纤维素材料正受到越来越多的关注。各种脱木质素方案和多种进一步的加工步骤,包括聚合物浸渍和致密化,导致了一系列广泛的性能。然而,为了在该领域取得更快的进展,处理优化需要更全面地表征所开发材料的结构、化学成分和机械性能。在此,综述了结构保留脱木质素的现行方案,并重点通过实验和建模对纤维素支架的不同层次的机械特性进行了机械特性表征,以揭示潜在的结构-性能关系。