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Multiphase Adhesive Coacervates Inspired by the Sandcastle Worm

机译:受沙堡蠕虫启发的多相粘性凝聚层

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Water-borne, underwater adhesives were created by complex coacervation of synthetic copolyelectrolytes that mimic the proteins of the natural underwater adhesive of the sandcastle worm. To increase bond strengths, we created a second polymer network within cross-linked coacervate network by entrapping polyethylene glycol diacrylate (PEG-dA) monomers in the coacervate phase. Simultaneous polymerization of PEG-dA and cross-linking of the coacervate network resulted in maximum shear bond strengths of ~1.2 MPa. Approximately 40% of the entrapped PEG-dA polymerized based on attenuated total reflectance-Fourier transform infrared spectroscopy. The monomer-filled coacervate had complex flow behavior, thickening at low shear rates and then thinning suddenly with a 16-fold drop in viscosity at shear rates near 6 s_I. The microscale structure of the complex coacervates resembled a three-dimensional porous network of interconnected tubules. The sharp shear thinning behavior is conceptualized as a structural reorganization between the interspersed phases of the complex coacervate. The bond strength and complex fluid behavior of the monomer-filled coacervates have important implications for medical applications of the adhesives.
机译:水性,水下粘合剂是通过合成共聚电解质的复合凝聚而产生的,该电解质模拟沙堡蠕虫的天然水下粘合剂的蛋白质。为了提高粘合强度,我们通过在聚凝聚相中截留聚乙二醇二丙烯酸酯(PEG-dA)单体,在交联凝聚层网络内创建了第二个聚合物网络。 PEG-dA的同时聚合和凝聚层网络的交联导致最大剪切键强度约为1.2 MPa。基于衰减的全反射-傅立叶变换红外光谱法,约有40%的被困PEG-dA发生了聚合。单体填充的凝聚层具有复杂的流动行为,在低剪切速率下会增稠,然后在6 sI附近的剪切速率下突然变薄,粘度下降16倍。复杂凝聚层的微观结构类似于相互连接的小管的三维多孔网络。尖锐的剪切稀化行为被概念化为复杂凝聚层散布相之间的结构重组。单体填充的凝聚层的粘合强度和复杂的流体行为对粘合剂的医学应用具有重要意义。

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