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Biopolymer nanofibrils: Structure, modeling, preparation, and applications

机译:生物聚合物纳米纤维:结构,建模,制备和应用

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Biopolymer nanofibrils exhibit exceptional mechanical properties with a unique combination of strength and toughness, while also presenting biological functions that interact with the surrounding environment. These features of biopolymer nanofibrils profit from their hierarchical structures that spun angstrom to hundreds of nanometer scales. To maintain these unique structural features and to directly utilize these natural supramolecular assemblies, a variety of new methods have been developed to produce biopolymer nanofibrils. In particular, cellulose nanofibrils (CNFs), chitin nanofibrils (ChNFs), silk nanofibrils (SNFs) and collagen nanofibrils (CoNFs), as the four most abundant biopolymer nanofibrils on earth, have been the focus of research in recent years due to their renewable features, wide availability, low-cost, biocompatibility, and biodegradability. A series of top-down and bottom-up strategies have been accessed to exfoliate and regenerate these nanofibrils for versatile advanced applications. In this review, we first summarize the structures of biopolymer nanofibrils in nature and outline their related computational models with the aim of disclosing fundamental structure-property relationships in biological materials. Then, we discuss the underlying methods used for the preparation of CNFs, ChNFs, SNFs and CoNFs, and discuss emerging applications for these biopolymer nanofibrils.
机译:生物聚合物纳米纤维具有特殊的力学性能,具有独特的强度和韧性的组合,同时呈现与周围环境相互作用的生物学功能。生物聚合物纳米纤维的这些特征从其分层结构中获利,这些结构纺为数百纳米鳞片。为了保持这些独特的结构特征并直接利用这些天然的超分子组件,已经开发了各种新方法来生产生物聚合物纳米纤维。特别地,纤维素纳米纤维(CNFS),甲壳素纳米纤维(CHNFS),丝酰纤维(SNF)和胶原纳米纤维(CONFS),作为地球上的四个最丰富的生物聚合物纳米纤维,近年来由于其可再生目标是研究的重点特点,可用性,低成本,生物相容性和生物降解性。已经访问了一系列自上而下和自下而上的策略,以剥离并再生这些纳米纤维以进行多功能的先进应用。在本文中,我们首先总结了自然生物聚合物纳米纤维的结构,并概述了它们的相关计算模型,目的是在生物材料中披露基本结构性质关系。然后,我们讨论用于制备CNFS,CHNF,SNF和Confs的潜在方法,并讨论这些生物聚合物纳米纤维的新兴应用。

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