Key Laboratory for the Green Preparation and Application of Functional Materials, Hubei Key Laboratory of Polymer Materials, School of Materials Science and Engineering, Hubei University, Youyi Road 368, Wuhan, 430062, China.
CAS Key Lab of Bio-Based Materials, Qingdao Institute of Bioenergy and Bioprocess Technology, Chinese Academy of Sciences, Songling Road 189, Qingdao, 266101, P. R. China.
Adv Mater. 2021 Mar;33(10):e2007596. doi: 10.1002/adma.202007596. Epub 2021 Feb 3.
Traditionally, energy-intensive and time-consuming postmechanical disintegration processes are inevitable in extracting biopolymer nanofibrils from natural materials and thereby hinder their practical applications. Herein, a new, convenient, scalable, and energy-efficient method for exfoliating nanofibrils (ChNFs) from various chitin sources via pseudosolvent-assisted intercalation process is proposed. These self-exfoliated ChNFs possess controllable thickness from 2.2 to 0.8 nm, average diameter of 4-5 nm, high aspect ratio up to 10 and customized surface chemistries. Particularly, compared with elementary nanofibrils, ChNFs with few molecular layers thick exhibit greater potential to construct high-performance structural materials, e.g., ductile nanopapers with large elongation up to 70.1% and toughness as high as 30.2 MJ m , as well as soft hydrogels with typical nonlinear elasticity mimicking that of human-skin. The proposed self-exfoliation concept with unique advantages in the combination of high yield, energy efficiency, scalable productivity, less equipment requirements, and mild conditions opens up a door to extract biopolymer nanofibrils on an industrial scale. Moreover, the present modular ChNFs exfoliation will facilitate researchers to study the effect of thickness on the properties of nanofibrils and provide more insight into the structure-function relationship of biopolymer-based materials.
传统上,从天然材料中提取生物聚合物纳米纤维不可避免地需要进行能量密集型和耗时的机械后解体过程,从而阻碍了它们的实际应用。在此,提出了一种新的、方便的、可扩展的、节能的从各种甲壳素来源通过拟溶剂辅助插层过程剥离纳米纤维(ChNFs)的方法。这些自剥离的 ChNFs 具有从 2.2 到 0.8nm 的可控厚度、4-5nm 的平均直径、高达 10 的高纵横比和定制的表面化学性质。特别是与基本纳米纤维相比,厚度只有几个分子层的 ChNFs 具有更大的潜力来构建高性能结构材料,例如具有高达 70.1%的大伸长率和高达 30.2MJ/m 的韧性的韧性纳米纸,以及具有类似于人体皮肤的典型非线性弹性的柔软水凝胶。这种具有高得率、节能、可扩展生产、较少设备要求和温和条件的独特优势的自剥离概念为在工业规模上提取生物聚合物纳米纤维开辟了一条道路。此外,本研究提出的模块化 ChNFs 剥离方法将有助于研究厚度对纳米纤维性能的影响,并深入了解基于生物聚合物的材料的结构-功能关系。