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用于高性能竹基复合材料的木质素粘结

Lignin Adhesion for High-Performance Bamboo Composites.

作者信息

Meng Taotao, Ding Yu, Liu Yu, Xu Lin, Mao Yimin, Gelfond Julia, Li Shuke, Li Zhihan, Salipante Paul F, Kim Hoon, Zhu J Y, Pan Xuejun, Hu Liangbing

机构信息

Department of Materials Science and Engineering, University of Maryland, College Park, Maryland 20742, United States.

NIST Center for Neutron Research, National Institute of Standards and Technology, Gaithersburg, Maryland 20899, United States.

出版信息

Nano Lett. 2023 Sep 27;23(18):8411-8418. doi: 10.1021/acs.nanolett.3c01497. Epub 2023 Sep 7.

Abstract

Bamboo composite is an attractive candidate for structural materials in applications such as construction, the automotive industry, and logistics. However, its development has been hindered due to the use of harmful petroleum-derived synthetic adhesives or low-bonding biobased adhesives. Herein, we report a novel bioadhesion strategy based on lignin bonding that can process natural bamboo into a scalable and high-performance composite. In this process, lignin bonds the cellulose fibrils into a strong network via a superstrong adhesive interface formed by hydrogen bonding and nanoscale entanglement. The resulting glued-bamboo (glubam) composite exhibits a record-high shear strength of ∼4.4 MPa and a tensile strength of ∼300 MPa. This lignin adhesion strategy is facile, highly scalable, and cost-effective, suggesting a promising route for fabricating strong and sustainable structural bamboo composites that sequester carbon and reduce our dependence on petrochemical-based adhesives.

摘要

竹复合材料是建筑、汽车工业和物流等应用领域中结构材料的一个有吸引力的候选材料。然而,由于使用了有害的石油衍生合成粘合剂或低粘结性生物基粘合剂,其发展受到了阻碍。在此,我们报告了一种基于木质素粘结的新型生物粘附策略,该策略可以将天然竹子加工成可扩展的高性能复合材料。在这个过程中,木质素通过氢键和纳米级缠结形成的超强粘合界面将纤维素原纤维粘结成一个强大的网络。所得的胶合竹(glubam)复合材料表现出创纪录的高剪切强度,约为4.4 MPa,拉伸强度约为300 MPa。这种木质素粘附策略简便、高度可扩展且具有成本效益,为制造坚固且可持续的结构竹复合材料指明了一条有前景的途径,这种复合材料可以封存碳并减少我们对石化基粘合剂的依赖。

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