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Rapid Processing of Whole Bamboo with Exposed, Aligned Nanofibrils toward a High-Performance Structural Material

机译:快速加工整个竹子暴露,对准纳米纤维朝向高性能结构材料

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摘要

Lightweight structural materials are critical in construction and automobile applications. In past centuries, there has been great success in developing strong structural materials, such as steels, concrete, and petroleum-based composites, most of which, however, are either too heavy, high cost, or nonrenewable. Biosourced composites are attractive alternatives to conventional structural materials, especially when high mechanical strength is presented. Here we demonstrate a strong, lightweight bio-based structural material derived from bamboo via a two-step manufacturing process involving partial delignification followed by microwave heating. Partial delignification is a critical step prior to microwave heating as it makes the cell walls of bamboo softer and exposes more cellulose nanofibrils, which enables superior densification of the bamboo structure via heat-driven shrinkage. Additionally, microwave heating, as a fast and uniform heating method, can drive water out of the bamboo structure, yet without destroying the material's structural integrity, even after undergoing a large volume reduction of 28.9%. The resulting microwave-heated delignified bamboo structure demonstrates outstanding mechanical properties with a nearly 2-times improved tensile strength, 3.2-times enhanced toughness, and 2-times increased bending strength compared to natural bamboo. Additionally, the specific tensile strength of the modified bamboo structure reaches 560 MPa cm(3) g(-1), impressive given that its density is low (1.0 g cm(-3)), outperforming common structural materials, such as steels, metal alloys, and petroleum-based composites. These excellent mechanical properties combined with the resource abundance, renewable and sustainable features of bamboo, as well as the rapid, scalable manufacturing process, make this strong microwave-processed bamboo structure attractive for lightweight, energy-efficient engineering applications.
机译:轻质结构材料在施工和汽车应用方面都是至关重要的。在过去的几个世纪里,在开发强大的结构材料方面取得了巨大成功,例如钢,混凝土和石油基复合材料,其中大部分是过重,成本高,成本高或不可再生。生物循环复合材料是传统结构材料的有吸引力的替代品,特别是当提出高机械强度时。在这里,我们展示了一种强大的轻质生物的结构材料,通过两步制造过程衍生自竹子,涉及部分上游术,然后进行微波加热。部分偏出是微波加热之前的关键步骤,因为它使竹子较软的细胞壁露出更多的纤维素纳米纤维,这使得能够通过热驱动收缩来优异地致密竹结构。此外,微波加热,作为快速且均匀的加热方法,可以将水从竹结构中驱散,尚未破坏材料的结构完整性,即使在经历大量减少28.9%后也是如此。由此产生的微波炉加热的竹制结构表现出卓越的机械性能,抗拉强度的近2倍,增强韧性3.2倍,与天然竹子相比,弯曲强度增加了2倍。另外,改性竹结构的特定拉伸强度达到560MPa cm(3 )g(3)g(-1),令人印象深刻,因为其密度低(1.0g cm(-3)),优于钢等钢板,金属合金和石油基复合材料。这些优异的机械性能结合了竹子的资源丰富,可再生和可持续的特点,以及快速,可扩展的制造工艺,使这种强大的微波处理竹结构对轻质,节能的工程应用具有吸引力。

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