pH-Dependent Friction of Polyacrylamide Hydrogels

聚丙烯酰胺 自愈水凝胶 材料科学 氧化还原 过硫酸铵 水解 酰胺 肿胀 的 化学工程 高分子化学 摩擦学 复合材料 化学 有机化学 聚合 聚合物 工程类 冶金
作者
Allison L. Chau,Conor D. Pugsley,Madeleine E. Miyamoto,Yongkui Tang,Claus D. Eisenbach,Thomas E. Mates,Craig J. Hawker,Megan T. Valentine,Angela A. Pitenis
出处
期刊:Tribology Letters [Springer Nature]
卷期号:71 (4) 被引量:4
标识
DOI:10.1007/s11249-023-01779-4
摘要

Abstract Polyacrylamide hydrogels are widely used in biomedical applications due to their tunable mechanical properties and charge neutrality. Our recent tribological investigations of polyacrylamide gels have revealed tunable and pH-dependent friction behavior. To determine the origins of this pH-responsiveness, we prepared polyacrylamide hydrogels with two different initiating chemistries: a reduction–oxidation (redox)-initiated system using ammonium persulfate (APS) and N,N,N ′ N ′ - tetramethylethylenediamine (TEMED) and a UV-initiated system with 2-hydroxy-4′-(2-hydroxyethoxy)-2-methylpropiophenone (Irgacure 2959). Hydrogel swelling, mechanical properties, and tribological behavior were investigated in response to solution pH (ranging from ≈ 0.34 to 13.5). For polyacrylamide hydrogels in sliding contact with glass hemispherical probes, friction coefficients decreased from µ = 0.07 ± 0.02 to µ = 0.002 ± 0.002 (redox-initiated) and from µ = 0.05 ± 0.03 to µ = 0.003 ± 0.003 (UV-initiated) with increasing solution pH. With hemispherical polytetrafluoroethylene (PTFE) probes, friction coefficients of redox-initiated hydrogels similarly decreased from µ = 0.06 ± 0.01 to µ = 0.002 ± 0.001 with increasing pH. Raman spectroscopy measurements demonstrated hydrolysis and the conversion of amide groups to carboxylic acid in basic conditions. We therefore propose that the mechanism for pH-responsive friction in polyacrylamide hydrogels may be credited to hydrolysis-driven swelling through the conversion of side chain amide groups into carboxylic groups and/or crosslinker degradation. Our results could assist in the rational design of hydrogel-based tribological pairs for biomedical applications from acidic to alkaline conditions. Graphical abstract
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