Bioinspired Self-Growing Layered Hydrogel Enabled by Catechol Chemistry-Mediated Interfacial Catalytic System.

ACS Appl Mater Interfaces

State Key Laboratory of Solid Lubrication, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences, Lanzhou 730000, China.

Published: August 2024

AI Article Synopsis

  • Tissue-inspired layered structural hydrogels are gaining popularity for applications in artificial muscles, wound healing, wearable tech, and soft robotics, but creating them efficiently remains a hurdle.
  • The authors introduce an interfacial catalytic self-growth method utilizing catechol chemistry that enables rapid growth of hydrogel layers by using a tannic acid-metal ion complex (like TA-Fe) to trigger polymerization directly at the interface without needing bulk solutions.
  • This innovative strategy allows for precise control over the growth conditions, enabling the customization of layered hydrogels and their properties, and even leads to the development of self-adhesive versions that can function as wearable strain sensors.

Article Abstract

Tissue-inspired layered structural hydrogel has attracted increasing attention in artificial muscle, wound healing, wearable electronics, and soft robots. Despite numerous efforts being devoted to developing various layered hydrogels, the rapid and efficient preparation of layered hydrogels remains challenging. Herein, inspired by the self-growth concept of living organisms, an interfacial catalytic self-growth strategy based on catechol chemistry-mediated self-catalytic system of preparing layered hydrogels is demonstrated. Typically, the tannic acid-metal ion (e.g., TA-Fe) complex embedded in the hydrogel substrate would catalytically trigger rapid solid-liquid interfacial polymerization to grow the hydrogel layer without bulk solution polymerization. The self-growth process can be finely controlled by changing the growth time, the molar ratio of Fe/TA, and so on. The strategy is applicable to prepare various layered hydrogels as well as complex layered hydrogel patterns, allowing the customization of the physicochemical properties of the hydrogel. In addition, the self-adhesive layered hydrogel was prepared and can be utilized as a wearable strain sensor to monitor physiological activities and human motions. The demonstrated interfacial catalytic self-growth strategy will provide a route to design and fabricate layered hydrogel materials.

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Source
http://dx.doi.org/10.1021/acsami.4c10104DOI Listing

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