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Updated: Aug 6, 2026

3D Printing of In Vitro Hydrogel Microcarriers by Alternating Viscous-Inertial Force Jetting
Published on: April 21, 2021
Floatable and Integrated Shape-shifting Hydrogel Carrier
Tianhong Zhao1, Moyuan Cao1, Muqian Li1
1School of Materials Science and Engineering, Tianjin Key Laboratory of Metal and Molecular Materials Chemistry, Frontiers Science Center for New Organic Matter, Academy for Advanced Interdisciplinary Studies, Nankai University, Tianjin, P. R. China.
Researchers developed a flexible, shape-shifting hydrogel floater inspired by aquatic microbes. This novel material offers adaptable buoyancy and versatile interfacial functions for environmental and energy applications.
Area of Science:
- Materials Science
- Biomaterials Engineering
- Environmental Science
Background:
- Traditional aquatic floaters are rigid and lack adaptability.
- Microbial buoyancy regulation offers inspiration for advanced materials.
Purpose of the Study:
- To develop a floatable and integrated shape-shifting (FISS) hydrogel for advanced floating carriers.
- To combine robustness with adaptability for versatile interfacial functions.
Main Methods:
- In situ formation of amorphous magnesium carbonate (AMC) nanoparticles for dynamic crosslinking.
- Incorporation of amino-functionalized hollow microspheres for tunable buoyancy and crosslinking.
- Microstructural engineering to achieve a stable state of "limited fluidity".
Main Results:
- The FISS hydrogel exhibits hydrostatic equilibrium on water surfaces with controlled dissipation.
- Demonstrated versatile interfacial functions: evaporation suppression, pollution shielding, and underwater gas capture.
- Assembly via interfacial adhesion enabled diverse carrier applications, including tunable evaporators and flexible detectors.
Conclusions:
- Presents a design strategy for a flexible and integrable hydrogel-based floater.
- Extends the application scenarios of hydrogel materials in environmental and energetic fields.
- Highlights the potential of biomimetic design for advanced functional materials.
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