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受自然分级复合设计原则启发的3D可打印强韧复合有机水凝胶。

3D printable strong and tough composite organo-hydrogels inspired by natural hierarchical composite design principles.

作者信息

Liu Quyang, Dong Xinyu, Qi Haobo, Zhang Haoqi, Li Tian, Zhao Yijing, Li Guanjin, Zhai Wei

机构信息

Department of Mechanical Engineering, National University of Singapore, 9 Engineering Drive 1, Singapore, Singapore.

出版信息

Nat Commun. 2024 Apr 15;15(1):3237. doi: 10.1038/s41467-024-47597-7.

Abstract

Fabrication of composite hydrogels can effectively enhance the mechanical and functional properties of conventional hydrogels. While ceramic reinforcement is common in many hard biological tissues, ceramic-reinforced hydrogels lack a similar natural prototype for bioinspiration. This raises a key question: How can we still attain bioinspired mechanical mechanisms in composite hydrogels without mimicking a specific composition and structure? Abstracting the hierarchical composite design principles of natural materials, this study proposes a hierarchical fabrication strategy for ceramic-reinforced organo-hydrogels, featuring (1) aligned ceramic platelets through direct-ink-write printing, (2) poly(vinyl alcohol) organo-hydrogel matrix reinforced by solution substitution, and (3) silane-treated platelet-matrix interfaces. Unit filaments are further printed into a selection of bioinspired macro-architectures, leading to high stiffness, strength, and toughness (fracture energy up to 31.1 kJ/m), achieved through synergistic multi-scale energy dissipation. The materials also exhibit wide operation tolerance and electrical conductivity for flexible electronics in mechanically demanding conditions. Hence, this study demonstrates a model strategy that extends the fundamental design principles of natural materials to fabricate composite hydrogels with synergistic mechanical and functional enhancement.

摘要

复合水凝胶的制备能够有效提升传统水凝胶的机械性能和功能特性。虽然陶瓷增强在许多坚硬生物组织中很常见,但陶瓷增强水凝胶缺乏类似的用于生物启发的天然原型。这就引出了一个关键问题:在不模仿特定组成和结构的情况下,我们如何在复合水凝胶中仍实现受生物启发的机械机制?本研究通过提炼天然材料的分级复合设计原则,提出了一种用于陶瓷增强有机水凝胶的分级制备策略,其特点包括:(1)通过直接墨水书写印刷排列陶瓷薄片;(2)通过溶液置换增强聚乙烯醇有机水凝胶基质;(3)硅烷处理薄片与基质的界面。单元细丝进一步被印刷成一系列受生物启发的宏观结构,通过协同多尺度能量耗散实现了高刚度、强度和韧性(断裂能高达31.1kJ/m)。这些材料在机械要求苛刻的条件下还表现出对柔性电子产品的宽操作耐受性和导电性。因此,本研究展示了一种将天然材料的基本设计原则扩展以制备具有协同机械和功能增强的复合水凝胶的模型策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/44f1/11018840/b0954efb29b6/41467_2024_47597_Fig1_HTML.jpg

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