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通过非共价相互作用制备的坚韧、可拉伸且可压缩的海藻酸盐基水凝胶。

Tough, stretchable and compressive alginate-based hydrogels achieved by non-covalent interactions.

作者信息

Jing Zhanxin, Dai Xiangyi, Xian Xueying, Du Xiaomei, Liao Mingneng, Hong Pengzhi, Li Yong

机构信息

College of Chemistry and Environment, Guangdong Ocean University Zhanjiang Guangdong 524088 People's Republic of China

出版信息

RSC Adv. 2020 Jun 22;10(40):23592-23606. doi: 10.1039/d0ra03733h. eCollection 2020 Jun 19.

Abstract

In this study, two alginate-based hydrogels with good mechanical strength, toughness and resilience were synthesized by hydrophobic interaction and coordination bonding. Sodium alginate/poly(acrylamide) semi-interpenetrating network (NaAlg/PAM semi-IPN) hydrogels were first synthesized through the micelle copolymerization of acrylamide and stearyl methacrylate in the presence of sodium alginate, then calcium alginate/poly(acrylamide) double network (CaAlg/PAM DN) hydrogels were prepared by immersing the as-prepared NaAlg/PAM semi-IPN hydrogels in a CaCl solution. FT-IR and XPS results revealed NaAlg/PAM semi-IPN hydrogels and CaAlg/PAM DN hydrogels were successfully synthesized through non-covalent interactions. The tensile strength of CaAlg/PAM DN hydrogels could reach 733.6 kPa, and their compressive strengths at 80% strain are significantly higher than those of the corresponding NaAlg/PAM semi-IPN hydrogels, which is attributed to the alginate network crosslinked by Ca. The dual physically crosslinked CaAlg/PAM DN hydrogels can achieve fast self-recovery, and good fatigue resistance, which is mainly assigned to energy dissipation through dynamic reversible non-covalent interactions in both networks. The self-healing ability, swelling behavior and morphology of the synthesized alginate-based hydrogels were also evaluated. This study offers a new avenue to design and construct hydrogels with high mechanical strength, high toughness and fast self-recovery properties, which broadens the current research and application of hydrogels.

摘要

在本研究中,通过疏水相互作用和配位键合合成了两种具有良好机械强度、韧性和弹性的海藻酸盐基水凝胶。首先,在海藻酸钠存在下,通过丙烯酰胺和甲基丙烯酸硬脂酯的胶束共聚合成海藻酸钠/聚(丙烯酰胺)半互穿网络(NaAlg/PAM半互穿网络)水凝胶,然后将制备好的NaAlg/PAM半互穿网络水凝胶浸入CaCl溶液中制备海藻酸钙/聚(丙烯酰胺)双网络(CaAlg/PAM双网络)水凝胶。傅里叶变换红外光谱(FT-IR)和X射线光电子能谱(XPS)结果表明,通过非共价相互作用成功合成了NaAlg/PAM半互穿网络水凝胶和CaAlg/PAM双网络水凝胶。CaAlg/PAM双网络水凝胶的拉伸强度可达733.6 kPa,其在80%应变下的压缩强度明显高于相应的NaAlg/PAM半互穿网络水凝胶,这归因于钙交联的海藻酸盐网络。双重物理交联的CaAlg/PAM双网络水凝胶能够实现快速自我修复和良好的抗疲劳性能,这主要归因于两个网络中通过动态可逆非共价相互作用实现的能量耗散。还评估了合成的海藻酸盐基水凝胶的自愈能力、溶胀行为和形态。本研究为设计和构建具有高机械强度、高韧性和快速自我修复性能的水凝胶提供了一条新途径,拓宽了当前水凝胶的研究和应用范围。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8c6f/9054928/d1a86771cd6e/d0ra03733h-s1.jpg

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