State Key Laboratory of High-Performance Ceramics and Superfine Microstructure, Shanghai Institute of Ceramics, Chinese Academy of Sciences, 200050, Shanghai, P. R. China.
State Key Laboratory of Chemical Engineering, East China University of Science and Technology, 200237, Shanghai, P. R. China.
ChemSusChem. 2023 May 19;16(10):e202202185. doi: 10.1002/cssc.202202185. Epub 2023 Mar 28.
Bamboo is widely distributed, rapidly regenerable, and incorporates long cellulose fibers, which make it one of the most lightweight and strong natural materials. Processing bamboo into a high-performance structural material for plastic replacement is highly promising but challenging. In this study, an all-natural, high-performance structural material is derived from natural bamboo with superior mechanical and thermal properties that benefit from the introduction of surface charge and further layer-by-layer assembly of bamboo cellulose fibers. The obtained modified bamboo fiber plate (MBFP) transcends the constraints of the natural size and anisotropy of bamboo, showing high flexural strength (ca. 179 MPa) and flexural modulus (ca. 12 GPa). Moreover, the product has an extremely low coefficient of thermal expansion (ca. 11.3×10 K ), high thermal stability, and superior fire resistance. The excellent mechanical and thermal properties combined with the efficient and rational manufacturing process make MBFP a powerful plastic alternative for furniture, construction, and automotive industries.
竹子分布广泛、可再生迅速,并且含有长纤维素纤维,这使其成为最轻质高强的天然材料之一。将竹子加工成高性能的结构材料以替代塑料具有广阔的前景,但也极具挑战性。在这项研究中,我们从天然竹子中提取出一种全天然、高性能的结构材料,该材料具有优异的机械和热性能,得益于表面电荷的引入以及进一步的层层组装竹纤维素纤维。所得到的改性竹纤维板(MBFP)克服了竹子天然尺寸和各向异性的限制,表现出高弯曲强度(约 179 MPa)和弯曲模量(约 12 GPa)。此外,该产品具有极低的热膨胀系数(约 11.3×10 K )、高热稳定性和出色的耐火性。卓越的机械和热性能以及高效合理的制造工艺使 MBFP 成为家具、建筑和汽车行业极具潜力的塑料替代品。