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Four-Dimensional Printing of Stimuli-Responsive Hydrogel-Based Soft Robots
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Customizable Single-Layer Programmable Deformation Hydrogel Robots Based on One-Time Fabricating with
Chenlong Tang1, Hui Ma1, Shiyu Wu1
1School of Biomedical Engineering, 3D-Printing and Tissue Engineering Center, Anhui Medical University, Hefei, China.
Soft Robotics
|April 8, 2025
Summary
Researchers developed a novel 3D printing method for programmable deformation hydrogel robots. These robots offer simple, reversible shape changes for potential biomedical applications.
Area of Science:
- Biomedical Engineering
- Materials Science
- Robotics
Background:
- Hydrogel robots offer significant potential in biomedical fields due to their reversible deformation capabilities.
- There is a growing clinical need for hydrogel robots that are easily processed, operated, and exhibit programmable deformation.
Purpose of the Study:
- To propose a novel, one-step fabrication method for single-layer programmable deformation hydrogel robots.
- To demonstrate the ability to program shape deformation by combining basic modules.
- To validate the reversible deformation and potential applications of these hydrogel robots.
Main Methods:
- Utilized a high-precision digital light processing 3D printing system for fabrication.
- Created two types of deformable elements with varying structure distributions using focused light of different intensities.
- Combined these elements to form four basic modules with distinct, fixed deformable shapes.
- Achieved programmable shape deformation by arranging combinations of these modules.
- Stimulated reversible deformation using near-infrared light.
Main Results:
- Successfully fabricated single-layer programmable deformation hydrogel robots in one step.
- Demonstrated the creation of four basic modules enabling programmed shape changes.
- Confirmed reversible, repeatable deformation of the hydrogel robots under near-infrared light.
- Fabricated scaffold prototypes using module combinations, showcasing programming feasibility.
- Validated potential applications in pipeline movement.
Conclusions:
- The proposed method offers a feasible approach for simple programming of hydrogel robot deformation.
- This research presents a novel fabrication technique for programmable deformation hydrogel robots in biomedical applications.
- The developed hydrogel robots exhibit controllable, reversible shape changes suitable for various uses.

