Nano-fibrous biopolymers as building blocks for gel networks: Interactions, characterization, and applications.

Xiaohui Mao, Yujie Liu, Chenyu Qiao, Yongxiang Sun, Ziqian Zhao, Jifang Liu, Liping Zhu, Hongbo Zeng
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Abstract

Biopolymers derived from natural resources are highly abundant, biodegradable, and biocompatible, making them promising candidates to replace non-renewable fossil fuels and mitigate environmental and health impacts. Nano-fibrous biopolymers possessing advantages of biopolymers entangle with each other through inter-/intra-molecular interactions, serving as ideal building blocks for gel construction. These biopolymer nanofibers often synergize with other nano-building blocks to enhance gels with desirable functions and eco-friendliness across various applications in biomedical, environmental, and energy sectors. The inter-/intra-molecular interactions directly affect the assembly of nano-building blocks, which determines the structure of gels, and the integrity of connected nano-building blocks, influencing the mechanical properties and the performance of gels in specific applications. This review focuses on four biopolymer nanofibers (cellulose, chitin, silk, collagen), commonly used in gel preparations, as representatives for polysaccharides and polypeptides. The covalent and non-covalent interactions between biopolymers and other materials have been categorized and discussed in relation to the resulting gel network structures and properties. Nanomechanical characterization techniques, such as surface forces apparatus (SFA) and atomic force microscopy (AFM), have been employed to precisely quantify the intermolecular interactions between biopolymers and other building blocks. The applications of these gels are classified and correlated to the functions of their building blocks. The inter-/intra-molecular interactions act as "sewing threads", connecting all nano-building blocks to establish suitable network structures and functions. This review aims to provide a comprehensive understanding of the interactions involved in gel preparation and the design principles needed to achieve targeted functional gels.

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纳米纤维生物聚合物作为凝胶网络的构建块:相互作用,表征和应用。
从自然资源中提取的生物聚合物储量丰富,具有可生物降解和生物相容性,使其成为替代不可再生化石燃料并减轻对环境和健康影响的有希望的候选者。纳米纤维生物聚合物具有生物聚合物的优点,通过分子间/分子内相互作用相互缠绕,是构建凝胶的理想基石。这些生物聚合物纳米纤维通常与其他纳米构建块协同作用,增强凝胶具有理想的功能和生态友好性,在生物医学,环境和能源领域的各种应用。分子间/分子内相互作用直接影响纳米构建块的组装,这决定了凝胶的结构,以及连接的纳米构建块的完整性,从而影响凝胶在特定应用中的力学性能和性能。本文综述了四种生物聚合物纳米纤维(纤维素、几丁质、丝、胶原蛋白),它们是凝胶制剂中常用的代表多糖和多肽。生物聚合物和其他材料之间的共价和非共价相互作用已经分类并讨论了与所得凝胶网络结构和性质的关系。纳米力学表征技术,如表面力仪(SFA)和原子力显微镜(AFM),已被用于精确量化生物聚合物和其他构建模块之间的分子间相互作用。这些凝胶的应用被分类,并与它们的构建块的功能相关联。分子间/分子内的相互作用就像“缝纫线”,将所有的纳米构建块连接起来,建立合适的网络结构和功能。这篇综述旨在全面了解凝胶制备过程中涉及的相互作用以及实现目标功能凝胶所需的设计原则。
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