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基于取向原纤化纤维素的高密度模塑纤维素纤维和透明生物复合材料。

High-Density Molded Cellulose Fibers and Transparent Biocomposites Based on Oriented Holocellulose.

机构信息

Wallenberg Wood Science Center, Department of Fiber and Polymer Technology , KTH Royal Institute of Technology , SE-10044 Stockholm , Sweden.

RISE, Division of Bioeconomy , Box 5604 , Stockholm , Sweden.

出版信息

ACS Appl Mater Interfaces. 2019 Mar 13;11(10):10310-10319. doi: 10.1021/acsami.8b22134. Epub 2019 Feb 27.

Abstract

Ecofriendly materials based on well-preserved and nanostructured wood cellulose fibers are investigated for the purpose of load-bearing applications, where optical transmittance may be advantageous. Wood fibers are subjected to mild delignification, flow orientation, and hot-pressing to form an oriented material of low porosity. The biopolymer composition of the fibers is determined. Their morphology is studied by scanning electron microscopy, cellulose orientation is quantified by X-ray diffraction, and the effect of beating is investigated. Hot-pressed networks are impregnated by a methyl methacrylate monomer and polymerized to form thermoplastic wood fiber/poly(methyl methacrylate) biocomposites. Tensile tests are performed, as well as optical transmittance measurements. Structure-property relationships are discussed. High-density molded fibers from holocellulose have mechanical properties comparable with nanocellulose materials and are recyclable. The thermoplastic matrix biocomposites showed superior mechanical properties (Young's modulus of 20 GPa and ultimate strength of 310 MPa) at a fiber volume fraction of 52%, with high optical transmittance of 90%. The study presents a scalable approach for strong, stiff, and transparent molded fibers/biocomposites.

摘要

研究了基于保存完好和纳米结构木纤维素纤维的环保材料,以用于承载应用,其中透光率可能是有利的。将木纤维进行温和的脱木质素处理、流动取向和热压,形成低孔隙率的取向材料。确定纤维的生物聚合物组成。通过扫描电子显微镜研究其形态,通过 X 射线衍射定量纤维素取向,并研究打浆的效果。将热压网络用甲基丙烯酸甲酯单体浸渍并聚合形成热塑性木纤维/聚(甲基丙烯酸甲酯)生物复合材料。进行拉伸试验和透光率测量。讨论了结构-性能关系。全纤维素高密度模压纤维具有与纳米纤维素材料相当的机械性能,并且可回收利用。在纤维体积分数为 52%时,热塑性基质生物复合材料表现出优异的机械性能(杨氏模量为 20 GPa,极限强度为 310 MPa),透光率高达 90%。该研究提出了一种可扩展的方法,用于制造高强度、刚性和透明的模压纤维/生物复合材料。

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