Ionic Conductivity of Polyelectrolyte Hydrogels

自愈水凝胶 聚电解质 离子电导率 阳离子聚合 材料科学 甲基丙烯酸酯 离子键合 高分子化学 化学工程 反离子 聚合物 乙二醇 电导率 电解质 化学 有机化学 离子 共聚物 复合材料 电极 物理化学 工程类
作者
Chen-Jung Lee,Haiyan Wu,Yang Hu,Megan M. Young,Hui-Feng Wang,Dylan M. Lynch,Fu‐Jian Xu,Hongbo Cong,Gang Cheng
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:10 (6): 5845-5852 被引量:239
标识
DOI:10.1021/acsami.7b15934
摘要

Polyelectrolytes have many important functions in both living organisms and man-made applications. One key property of polyelectrolytes is the ionic conductivity due to their porous networks that allow the transport of water and small molecular solutes. Among polyelectrolytes, zwitterionic polymers have attracted huge attention for applications that involve ion transport in a polyelectrolyte matrix; however, it is still unclear how the functional groups of zwitterionic polymer side chains affect their ion transport and swelling properties. In this study, zwitterionic poly(carboxybetaine acrylamide), poly(2-methacryloyloxyethyl phosphorylcholine), and poly(sulfobetaine methacrylate) hydrogels were synthesized and their ionic conductivity was studied and compared to cationic, anionic, and nonionic hydrogels. The change of the ionic conductivity of zwitterionic and nonionic hydrogels in different saline solutions was investigated in detail. Zwitterionic hydrogels showed much higher ionic conductivity than that of the widely used nonionic poly(ethylene glycol) methyl ether methacrylate hydrogel in all tested solutions. For both cationic and anionic hydrogels, the presence of mobile counterions led to high ionic conductivity in low salt solutions; however, the ionic conductivity of zwitterionic hydrogels surpassed that of cationic and ionic hydrogels in high salt solutions. Cationic and anionic hydrogels showed much higher water content than that of zwitterionic hydrogels in deionized water; however, the cationic hydrogels shrank significantly with increasing saline concentration. This work provides insight into the effects of polyelectrolyte side chains on ion transport. This can guide us in choosing better polyelectrolytes for a broad spectrum of applications, including bioelectronics, neural implants, battery, and so on.
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