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具有可切换高刚度和弹性的无机-有机杂化超材料。

Inorganic-organic hybrid metamaterials with switchable high stiffness and elasticity.

作者信息

Liu Feihong, Yao Shasha, Li Jia, Huang Kejie, Zhang Dongdong, Wong Tak Man, Tang Ruikang, Yeung Kelvin W K, Wu Jun

机构信息

Shenzhen Key Laboratory for Innovative Technology in Orthopaedic Trauma, Guangdong Engineering Technology Research Center for Orthopaedic Trauma Repair, Department of Orthopaedics and Traumatology, The University of Hong Kong-Shenzhen Hospital, Shenzhen, China.

Department of Orthopaedic Surgery, Sir Run Run Shaw Hospital School of Medicine, Zhejiang University, Hangzhou, Zhejiang, China.

出版信息

Nat Commun. 2025 May 13;16(1):4423. doi: 10.1038/s41467-025-59662-w.

Abstract

In the pursuit of replicating the remarkable mechanical properties of natural biological composites like bone and seashell, developing artificial bulk materials that seamlessly integrate rigid inorganic components with ductile organic constituents has been a longstanding challenge. A key hurdle has been the establishment of robust and reliable linkages between these disparate building blocks. Mechanical metamaterials achieved by well-designed chemical structures, however, offer a promising solution to address this challenge. In this study, we demonstrate that the calcium phosphate-based inorganic-organic hybrid metamaterials trapping inorganic nanoparticles within long-chain polymeric networks and anchoring inorganic blocks to these networks via short-chain organic crosslinkers exhibit switchable and tunable high stiffness and elasticity. Additionally, these metamaterials not only exhibit peculiar mechanical characteristics, but also present excellent biocompatibility, as demonstrated by the in vivo tests using male rats and the in vitro tests. These results suggest a wide range of potential clinical applications.

摘要

在追求复制诸如骨骼和贝壳等天然生物复合材料卓越的机械性能的过程中,开发能够将刚性无机成分与韧性有机成分无缝整合的人工块状材料一直是一项长期挑战。一个关键障碍是在这些不同的构建模块之间建立稳固且可靠的连接。然而,通过精心设计的化学结构实现的机械超材料为应对这一挑战提供了一个有前景的解决方案。在本研究中,我们证明,基于磷酸钙的无机 - 有机杂化超材料将无机纳米颗粒捕获在长链聚合物网络中,并通过短链有机交联剂将无机块锚定到这些网络上,表现出可切换和可调谐的高刚度和弹性。此外,这些超材料不仅展现出奇特的机械特性,还具有出色的生物相容性,雄性大鼠体内试验和体外试验均证明了这一点。这些结果表明其具有广泛的潜在临床应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0d4f/12075836/190f876eb22b/41467_2025_59662_Fig1_HTML.jpg

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