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Butterfly Proboscis-Inspired Water-Welding Strategy for Hollow-Walled Hydrogel 3D Stents With Ultrahigh Mechanical Support Capacity.

Created on 07 Sep 2026

Authors

Xi Yu, Guang Qian, Lidong Zhang

Published in

Advanced healthcare materials. Pages e71692. Sep 06, 2026. Epub Sep 06, 2026.

Abstract

Hydrogels have emerged as promising candidates for next-generation implantable biomedical stents. However, the scalable fabrication of hydrogel three-dimensional (3D) stents with sufficient mechanical support remains a major challenge, owing to the intrinsic flexibility of hydrogel materials. Here, inspired by the water-welding mechanism of the butterfly proboscis, we report a facile water-mediated welding strategy for sodium alginate (SA) films, which enables the assembly of fully integrated 3D stents using only water as the processing medium. The as-prepared solid-walled 3D stents can be seamlessly converted into hollow-walled architectures via a metal ion-induced asymmetric crosslinking followed by solvent exchange. Notably, the hollow-walled structure enables the mechanical support force five times that of solid-walled ones, rendering these hydrogel 3D stents highly attractive for biodegradable medical stents. This work provides a versatile and environmentally benign route to engineer 3D hydrogel stents, thereby advancing the development of advanced implantable biomedical devices.

PMID:
42701944
Bibliographic data and abstract were imported from PubMed on 07 Sep 2026.

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