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Polymerizable Microsphere-Induced High Mechanical Strength of Hydrogel Composed of Acrylamide

机译:可聚合的微球诱导的丙烯酰胺水凝胶的高机械强度

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摘要

Polymerizable microspheres are introduced into acrylamide to prepare the high mechanical strength hydrogels with a novel three-dimensional pore structure. Rheological properties, compressive stress–strain, tensile property, and compression strength of three different types of hydrogels were investigated. Moreover, a scanning electron microscope (SEM) was adopted to observe the three-dimension network structure of three different types of hydrogels. The test results illustrated that viscous moduli (G″) and elastic moduli (G′) of a hydrogel containing polymerizable microspheres (P) reached maximum values, compared to the normal hydrogel (N) and the composite hydrogel containing ordinary microspheres (O). When the hydrogels were squeezed, the N was easily fractured under high strain (99%), whereas the P was not broken, and quickly recovered its initial morphology after the release of load. The P showed excellent tensile properties, with an elongation at break up to 90% and a tensile strength greater than 220 g. The compression strength of the N was 100.44 kPa·m−1, while the resulting strength of P was enhanced to be 248.00 kPa·m−1. Therefore, the various performances of N were improved by adding polymerizable microspheres. In addition, the SEM images indicated that N has a general three-dimensional network structure; the conventional network structure did not exist in the P, which has a novel three-dimensional pore structure in the spherical projection and very dense channels, which led to the compaction of the space between the three-dimensional pore network layers and reduced the flowing of free water wrapped in the network. Therefore, the mechanical strength of hydrogel was enhanced.
机译:将可聚合的微球引入丙烯酰胺中,以制备具有新型三维孔结构的高机械强度水凝胶。研究了三种不同类型水凝胶的流变特性,压缩应力-应变,拉伸特性和压缩强度。此外,采用扫描电子显微镜(SEM)观察三种不同类型水凝胶的三维网络结构。测试结果表明,与普通水凝胶(N)和含普通微球(O)的复合水凝胶相比,含可聚合微球(P)的水凝胶的粘弹性模量(G'')和弹性模量(G')达到最大值。挤压水凝胶时,N在高应变(99%)下很容易断裂,而P并未断裂,释放负荷后迅速恢复了其初始形态。 P显示出优异的拉伸性能,断裂伸长率高达90%,拉伸强度大于220g。 N的压缩强度为100.44kPa·m -1 ,而所得的P的强度提高为248.00kPa·m -1 。因此,通过添加可聚合微球改善了N的各种性能。另外,SEM图像表明N具有一般的三维网络结构。 P中不存在常规的网状结构,在球形投影中具有新颖的三维孔结构,通道非常密集,这导致三维孔网层之间的空间变紧,并减少了流动。自由水包裹在网络中。因此,提高了水凝胶的机械强度。

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