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A novel 3D-printable hydrogel with high mechanical strength and shape memory properties

机译:具有高机械强度和形状记忆性能的新型3D可印刷水凝胶

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摘要

The three-dimensional (3D)-printing of hydrogels with excellent mechanical properties has attracted extensive attention owing to their potential applications in many fields. Through the photoinitiated copolymerization of methacrylic acid (MAAc) and N-(pyridin-2-yl)acrylamide (NPAM) in dimethylsulfoxide (DMSO), a copolymer solution was prepared; it was then 3D printed at 70 degrees C followed by solvent replacement of DMSO with water at 25 degrees C, and a novel 3D-printed tough hydrogel was prepared. In the presence of water, NPAM could undergo "multi-fold" hydrogen bonding with MAAc. Thus, the hydrogen bonding is strengthened and stabilized by the hydrophobic alpha-methyl of MAAc and the pyridine N-heterocycle of NPAM, meaning that the modules of the hydrogel can be up to five times stronger than the original organogels. The swelling or shrinkage of the gel is negligible during solvent replacement and the resultant hydrogel exhibits excellent mechanical properties, with an elastic modulus of 1.8-66 MPa, a tensile fracture stress of 2.2-6.3 MPa, a fracture strain of 360-570% and a fracture energy of 0.5-7.2 kJ m(-2). In addition, owing to the dynamic nature and temperature sensitivity of the hydrogen bonds, the hydrogel also exhibited fast self-recovery abilities and temperature activated shape memory properties. In particular, the hydrogen-bonding hydrogel could be quickly degraded and recovered by adjusting the pH, which allowed convenient recycling of the hydrogels. Our experimental results indicated that the combination of a 3D-printing technique and solvent replacement may provide a novel and effective method to obtain 3D-printed hydrogels with high mechanical strength and shape recovery properties, fostering their use in a number of fields such as soft robots, implant devices, tissue engineering and other environment friendly materials.
机译:由于许多领域的潜在应用,三维(3D) - 具有优异机械性能的水凝胶印刷引起了广泛的关注。通过甲基丙烯酸(MAAC)和N-(吡啶-2-基)丙烯酰胺(NPAM)在二甲基硫氧化物(DMSO)中的光灭绝共聚,制备共聚物溶液;然后,在70摄氏度下印刷3D,然后用25摄氏度用水替代DMSO,制备新的3D印刷硬凝胶。在水存在下,NPAM可以与MAAC进行“多折”氢键。因此,通过Maac的疏水性α-甲基和NPAM的吡啶N-杂环强化和稳定氢键,这意味着水凝胶的模块可以比原始有机凝胶更强的五倍。溶剂置换期间凝胶的肿胀或收缩可忽略不计,所得的水凝胶具有优异的机械性能,弹性模量为1.8-66MPa,拉伸断裂应力为2.2-6.3MPa,裂缝应变为360-570%裂缝能量为0.5-7.2 kJ m(-2)。此外,由于氢键的动态性质和温度敏感性,水凝胶也表现出快速的自回收能力和温度活化形状记忆性能。特别地,氢键水凝胶可以通过调节pH迅速降解并回收,这允许方便的水凝胶再循环。我们的实验结果表明,3D印刷技术和溶剂替代品的组合可以提供一种新的和有效的方法,以获得具有高机械强度和形状回收性能的3D印刷水凝胶,培养它们在许多柔软机器人的领域中使用,植入装置,组织工程和其他环保材料。

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