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用于潜在生物医学应用的各向异性坚韧聚乙烯醇/氧化石墨烯纳米复合水凝胶

Anisotropic tough poly(vinyl alcohol)/graphene oxide nanocomposite hydrogels for potential biomedical applications.

作者信息

Luo Qiaomei, Shan Yangyang, Zuo Xia, Liu Jiaqi

机构信息

Department of Chemistry, Capital Normal University Beijing 100048 P. R. China

出版信息

RSC Adv. 2018 Apr 10;8(24):13284-13291. doi: 10.1039/c8ra00340h. eCollection 2018 Apr 9.

Abstract

Hydrogels, one of the most important bioinspired materials, are receiving increasing attention because of their potential applications as scaffolds for artificial tissue engineering and vehicles for drug delivery, However, these applications are always severely limited by their microstructure and mechanical behavior. Here we report the fabrication of a tough polyvinyl alcohol/graphene oxide (PVA/GO) nanocomposite hydrogel through a simple and effective directional freezing-thawing (DFT) technique. The resulting hydrogels show well-developed anisotropic microstructure and excellent mechanical properties with the assistance of DFT method and lamellar graphene. The hydrogels with anisotropic porous structures that consisted of micro-sized fibers and lamellas exhibit high tensile strengths, up to 1.85 MPa with a water content of 90%. More interestingly, the PVA/GO composite hydrogels exhibit the better thermostability, which can maintain the original shape when swollen in hot water (65 °C). In addition, the hydrogels with biocompatibility show good drug release efficiency due to the unique hierarchical structure. The successful synthesis of such hydrogel materials might pave the way to explore applications in biomedical and soft robotics fields.

摘要

水凝胶作为最重要的生物启发材料之一,因其作为人工组织工程支架和药物递送载体的潜在应用而受到越来越多的关注。然而,这些应用总是受到其微观结构和力学行为的严重限制。在此,我们报告了通过一种简单有效的定向冻融(DFT)技术制备坚韧的聚乙烯醇/氧化石墨烯(PVA/GO)纳米复合水凝胶。在DFT方法和层状石墨烯的辅助下,所得水凝胶呈现出发达的各向异性微观结构和优异的力学性能。具有由微米级纤维和薄片组成的各向异性多孔结构的水凝胶表现出高拉伸强度,在含水量为90%时高达1.85MPa。更有趣的是,PVA/GO复合水凝胶表现出更好的热稳定性,在热水(65°C)中溶胀时能保持原始形状。此外,具有生物相容性的水凝胶由于其独特的分级结构而显示出良好的药物释放效率。这种水凝胶材料的成功合成可能为探索其在生物医学和软机器人领域的应用铺平道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a046/9079669/ecaccee2b6d8/c8ra00340h-f1.jpg

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