Regulating the Dynamic Properties of Knoevenagel Condensation Cross‐Linked Hydrogels via Thia‐Michael Addition Reaction
Yu Yan, Ruizhu Yang, Mingming Zhao, Yuqian Ji, Zhiqiang Sun, Xiaonong Zhang, Chunsheng XiaoABSTRACT
The strategies for regulating dynamic mechanical properties of dynamic hydrogels have attracted significant attention. Herein, we developed a new strategy to regulate the dynamic properties of Knoevenagel condensation (KC) reaction cross‐linked hydrogels through reversible thia‐Michael addition reaction. In this system, the dynamic C═C bonds formed by the reversible KC reaction could react with thiols via the reversible Michael addition reaction, leading to the structural changes from C═C to C─C bonds and thereby enabling effective modulation of the hydrogel's viscoelastic behaviors. Furthermore, decreasing the pH reduced the reverse reaction rates of both the KC reaction and the thia‐Michael addition reaction, reinforcing the stability of the C═C bonds and thia‐Michael adducts. To implement this dual regulation, N‐acetylcysteine, a small molecule containing both thiol and carboxyl groups, was introduced, which allowed synergistic modulation through thiol‐C═C reversible addition and pH responsiveness. This cooperative regulation enables fine‐tuned control of hydrogel dynamics, extending stress relaxation time from 20 to 1900 s, enhancing the storage modulus from 2205 to 4705 Pa, and improving the structural stability. Overall, this reversible thia‐Michael addition‐mediated mechanism paves a new way for regulating the dynamic properties of the KC reaction cross‐linked hydrogels.