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木质素脱除及离子液体处理木材制备多功能高性能结构材料。

Delignification and Ionic Liquid Treatment of Wood toward Multifunctional High-Performance Structural Materials.

机构信息

VTT-Technical Research Centre of Finland Ltd, Tietotie 4E, P.O. Box 1000, FI-02044 Espoo, Finland.

出版信息

ACS Appl Mater Interfaces. 2020 May 20;12(20):23532-23542. doi: 10.1021/acsami.0c02221. Epub 2020 May 7.

DOI:10.1021/acsami.0c02221
PMID:32337962
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7660570/
Abstract

Wood-based multifunctional materials with excellent mechanical performance are increasingly considered for sustainable advanced applications due to their unique hierarchical structure and inherent reinforcing cellulose phase orientation. Nonetheless, a wider multipurpose utilization of wood materials is so far hampered because of constraints arising from scalable functionalization, efficient processing, facile shaping as well asnatural heterogeneity and durability. This study introduces a multifunctional all-wood material fabrication method relying on delignification, ionic liquid (IL) treatment, and pressure-assisted consolidation of wood. Structure-retaining controlled delignification of wood was performed to enable direct access to the hierarchical cellulose assembly, while preserving the highly aligned and thus beneficial wood structural directionality. As a following step, the obtained biobased scaffold with an increased porosity was infiltrated with an IL and heat-activated to partially dissolve and soften the cellulose fiber surface. Samples washed with water to remove IL exhibited pronounced isotropic flexibility, which upon combined compression and lateral shear allowed the fabrication of various 3D shapes with adjustable fiber architecture. The obtained very compact and totally additive-free all-wood materials were extensively characterized, revealing superior mechanical performance, and gained multifunctionality compared to native wood.

摘要

基于木材的多功能材料具有优异的机械性能,由于其独特的层次结构和固有的增强纤维素相取向,越来越多地被认为可用于可持续的先进应用。然而,由于可扩展的功能化、高效的加工、简便的成型以及天然的异质性和耐久性方面的限制,木材材料的更广泛的多用途利用至今仍受到阻碍。本研究介绍了一种基于木质素脱除、离子液体(IL)处理和加压固结的多功能全木材材料制造方法。对木材进行保留结构的控制木质素脱除,以直接进入层次化的纤维素组装,同时保留高度取向的、因而有益的木材结构方向性。作为下一步,获得的具有增加的孔隙率的生物基支架用 IL 渗透,并通过热激活部分溶解和软化纤维素纤维表面。用去离子水清洗以去除 IL 的样品表现出明显的各向同性柔韧性,通过压缩和横向剪切的组合,允许制造具有可调节纤维结构的各种 3D 形状。所获得的非常紧凑且完全不含添加剂的全木材材料经过广泛的表征,与天然木材相比,具有优异的机械性能和多功能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e76b/7660570/dedec960f961/am0c02221_0008.jpg
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