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High performances of dual network PVA hydrogel modified by PVP using borax as the structure-forming accelerator

机译:以硼砂为结构促进剂的PVP改性双网络PVA水凝胶的高性能

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A dual network hydrogel made up of polyvinylalcohol (PVA) crosslinked by borax and polyvinylpyrrolidone (PVP) was prepared by means of freezing-thawing circles. Here PVP was incorporated by linking with PVA to form a network structure, while the introduction of borax played the role of crosslinking PVA chains to accelerate the formation of a dual network structure in PVA/PVP composite hydrogel, thus endowing the hydrogel with high mechanical properties. The effects of both PVP and borax on the hydrogels were evaluated by comparing the two systems of PVA/PVP/borax and PVA/borax hydrogels. In the former system, adding 4.0% PVP not only increased the water content and the storage modulus but also enhanced the mechanical strength of the final hydrogel. But an overdose of PVP just as more than 4.0% tended to undermine the structure of hydrogels, and thus deteriorated hydrogels’ properties because of the weakened secondary interaction between PVP and PVA. Likewise, increasing borax could promote the gel crosslinking degree, thus making gels show a decrease in water content and swelling ratio, meanwhile shrinking the pores inside the hydrogels and finally enhancing the mechanical strength of hydrogels prominently. The developed hydrogel with high performances holds great potential for applications in biomedical and industrial fields.
机译:通过冻融圈制备了由硼砂交联的聚乙烯醇(PVA)和聚乙烯吡咯烷酮(PVP)组成的双网络水凝胶。在这里,PVP通过与PVA结合形成网络结构,而硼砂的引入则起到了使PVA链交联的作用,从而加速了PVA / PVP复合水凝胶中双重网络结构的形成,从而赋予了水凝胶高的机械性能。通过比较PVA / PVP /硼砂和PVA /硼砂水凝胶的两种系​​统,评估了PVP和硼砂对水凝胶的影响。在前一种体系中,添加4.0%PVP不仅增加了水含量和储能模量,而且增强了最终水凝胶的机械强度。但是过量服用PVP的比例超过4.0%往往会破坏水凝胶的结构,从而由于PVP和PVA之间的次级相互作用减弱而使水凝胶的性能下降。同样,增加硼砂含量可以促进凝胶的交联度,从而使凝胶的水含量和溶胀率降低,同时使水凝胶内部的孔收缩,最终显着提高水凝胶的机械强度。开发出的高性能水凝胶在生物医学和工业领域具有广阔的应用前景。

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