Tough, Transparent, 3D‐Printable, and Self‐Healing Poly(ethylene glycol)‐Gel (PEGgel)
Zhenwu Wang, Haijun Cui, Modan Liu, Stephan L. Grage, Maxi Hoffmann, Elaheh Sedghamiz, Wolfgang Wenzel, Pavel A. Levkin
- Year
- 2021
- Citations
- 144
- Access
- Open access
Abstract
Abstract Polymer gels, such as hydrogels, have been widely used in biomedical applications, flexible electronics, and soft machines. Polymer network design and its contribution to the performance of gels has been extensively studied. In this study, the critical influence of the solvent nature on the mechanical properties and performance of soft polymer gels is demonstrated. A polymer gel platform based on poly(ethylene glycol) (PEG) as solvent is reported (PEGgel). Compared to the corresponding hydrogel or ethylene glycol gel, the PEGgel with physically cross‐linked poly(hydroxyethyl methacrylate‐ co ‐acrylic acid) demonstrates high stretchability and toughness, rapid self‐healing, and long‐term stability. Depending on the molecular weight and fraction of PEG, the tensile strength of the PEGgels varies from 0.22 to 41.3 MPa, fracture strain from 12% to 4336%, modulus from 0.08 to 352 MPa, and toughness from 2.89 to 56.23 MJ m –3 . Finally, rapid self‐healing of the PEGgel is demonstrated and a self‐healing pneumatic actuator is fabricated by 3D‐printing. The enhanced mechanical properties of the PEGgel system may be extended to other polymer networks (both chemically and physically cross‐linked). Such a simple 3D‐printable, self‐healing, and tough soft material holds promise for broad applications in wearable electronics, soft actuators and robotics.
Keywords
Related papers
Statistical Learning Theory
Yuhai Wu, Vladimir Vapnik
1999
Fractional Differential Equations
Igor Podlubný
2025
Applied Nonlinear Control
Jean-Jacques Slotine, Weiping Li
1991
Genetic Programming: On the Programming of Computers by Means of Natural Selection
John R. Koza
1992