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An Alkaline Based Method for Generating Crystalline Strong and Shape Memory Polyvinyl Alcohol Biomaterials

机译:一种基于碱性晶体强形状记忆聚乙烯醇生物材料的方法

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摘要

Strong, stretchable, and durable biomaterials with shape memory properties can be useful in different biomedical devices, tissue engineering, and soft robotics. However, it is challenging to combine these features. Semi‐crystalline polyvinyl alcohol (PVA) has been used to make hydrogels by conventional methods such as freeze–thaw and chemical crosslinking, but it is formidable to produce strong materials with adjustable properties. Herein, a method to induce crystallinity and produce physically crosslinked PVA hydrogels via applying high‐concentration sodium hydroxide into dense PVA polymer is introduced. Such a strategy enables the production of physically crosslinked PVA biomaterial with high mechanical properties, low water content, resistance to injury, and shape memory properties. It is also found that the developed PVA hydrogel can recover 90% of plastic deformation due to extension upon supplying water, providing a strong contraction force sufficiently to lift objects 1100 times more than their weight. Cytocompatibility, antifouling property, hemocompatibility, and biocompatibility are also demonstrated in vitro and in vivo. The fabrication methods of PVA‐based catheters, injectable electronics, and microfluidic devices are demonstrated. This gelation approach enables both layer‐by‐layer and 3D printing fabrications.
机译:具有形状记忆性能的强大,可伸缩和耐用的生物材料可用于不同的生物医学设备,组织工程和软机器人。但是,结合这些特征是挑战性的。半结晶聚乙烯醇(PVA)已用于通过常规方法如冷冻解冻和化学交联制成水凝胶,但是强大的是产生具有可调节性能的强材料。在此,通过将高浓度氢氧化钠施加到致密的PVA聚合物中,引入诱导结晶度并产生物理交联的PVA水凝胶的方法。这种策略使得能够生产具有高机械性能,低含水量,损伤耐药性的物理交联的PVA生物材料,以及损伤性和形状记忆性能。还发现,由于在供水时,开发的PVA水凝胶可以恢复由于延伸而产生的90%的塑性变形,从而充分提供强度的收缩力,以比其重量更高升高1100倍。还在体外和体内进行了细胞偶联,防污性,血液相容性和生物相容性。对PVA的导管,可注射电子器件和微流体装置的制造方法进行了说明。这种胶凝方法使得逐层和3D印刷制造。

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