用于按需粘合的光控粘合剂水凝胶

Song Yang, Chenxi Qin, Zhizhi Zhang, Ming Zhang, Bin Li*, Yanfei Ma*, Feng Zhou* and Weimin Liu, 
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引用次数: 0

摘要

固体之间的快速可逆粘附具有重要意义,特别是在生物医学、智能机器和生物电子传感器等领域。水凝胶作为一种软质材料,在可逆粘附中起着至关重要的作用。为了实现更广泛的应用,必须提高水凝胶的智能化。然而,制备具有远程控制、可逆粘附、快速反应、无残留的可逆黏附水凝胶仍然是该领域的一个挑战。在此,我们通过将温度控制的可逆粘附与Fe3O4的光热响应能力相结合,开发了一种光控可逆粘附水凝胶。水凝胶可以在温度控制下可逆粘附/解吸,并允许使用红外光进行远程粘附控制。在红外光照射下,地表水使羧酸基团迁移到表面,从而屏蔽了儿茶酚基团。这导致在界面上没有足够的粘接基团来形成与相对表面的相互作用。在没有红外光照射的情况下,粘附官能团暴露在外,使得具有粘附基团的表面与相对表面之间形成相互作用力。这种智能水凝胶在未来的伤口敷料、可穿戴设备和软体机器人中具有巨大的应用潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Light-Controlled Adhesive Hydrogels for On-Demand Adhesion

The rapid and reversible adhesion between solids is of great significance, particularly in fields such as biomedicine, intelligent machines, and bioelectronic sensors. Hydrogels, as soft materials, play a vital role in reversible adhesion. To achieve a wider range of applications, it is essential to enhance the intelligence of hydrogels. However, the preparation of reversible adhesive hydrogels with remote control, reversible adhesion, rapid response, and no residue remains a challenge in the field. Herein, we developed a light-controlled reversible adhesive hydrogel by integrating temperature-controlled reversible adhesion with the photothermal response capabilities of Fe3O4. The hydrogel can adhere/desorb reversibly under temperature control and allows for remote adhesion control using infrared light. Under infrared light irradiation, surface water causes carboxylic acid groups to migrate to the surface, thereby shielding the catechol groups. This results in insufficient adhesive groups at the interface to form interactions with opposing surfaces. Without infrared light irradiation, the adhesive functional groups are exposed, allowing interaction forces to form between the surface with the adhesion groups and the opposing surfaces. This smart hydrogel holds significant potential for future applications in wound dressings, wearable devices, and soft robots.

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