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千克级生产具有单向原纤维排列的高强度智能纤维素纤维。

Kilogram-scale production of strong and smart cellulosic fibers featuring unidirectional fibril alignment.

作者信息

Li Jianguo, Chen Chaoji, Chen Qiongyu, Li Zhihan, Xiao Shaoliang, Gao Jinlong, He Shuaiming, Lin Zhiwei, Tang Hu, Li Teng, Hu Liangbing

机构信息

Department of Materials Science and Engineering, University of Maryland, College Park, MD 20742, USA.

Department of Mechanical Engineering, University of Maryland, College Park, MD 20742, USA.

出版信息

Natl Sci Rev. 2024 Aug 5;11(10):nwae270. doi: 10.1093/nsr/nwae270. eCollection 2024 Oct.

Abstract

Multifunctional fibers with high mechanical strength enable advanced applications of smart textiles, robotics, and biomedicine. Herein, we reported a one-step degumming method to fabricate strong, stiff, and humidity-responsive smart cellulosic fibers from abundant natural grass. The facile process involves partially removing lignin and hemicellulose functioning as glue in grass, which leads to the separation of vessels, parenchymal cells, and cellulosic fibers, where cellulosic fibers are manufactured at kilogram scale. The resulting fibers show dense and unidirectional fibril structure at both micro- and nano-scales, which demonstrate high tensile strength of ∼0.9 GPa and Young's modulus of 72 GPa, being 13- and 14-times higher than original grass. Inspired by stretchable plant tendrils, we developed a humidity-responsive actuator by engineering cellulosic fibers into the spring-like structures, presenting superior response rate and lifting capability. These strong and smart cellulosic fibers can be manufactured at large scale with low cost, representing promising a fiber material derived from renewable and sustainable biomass.

摘要

具有高机械强度的多功能纤维可实现智能纺织品、机器人技术和生物医学的先进应用。在此,我们报道了一种一步脱胶方法,用于从丰富的天然草中制造坚固、坚硬且对湿度敏感的智能纤维素纤维。该简便工艺包括部分去除在草中起胶水作用的木质素和半纤维素,这导致导管、薄壁细胞和纤维素纤维分离,其中纤维素纤维以千克规模生产。所得纤维在微观和纳米尺度上均显示出致密且单向的原纤结构,其拉伸强度约为0.9 GPa,杨氏模量为72 GPa,分别比原始草高13倍和14倍。受可拉伸植物卷须的启发,我们通过将纤维素纤维加工成弹簧状结构开发了一种湿度响应致动器,具有出色的响应速率和提升能力。这些坚固且智能的纤维素纤维可以低成本大规模制造,代表了一种由可再生和可持续生物质衍生的有前途的纤维材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9087/11409887/22dfa9ffe91a/nwae270fig1.jpg

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