Many natural materials such as intervertebral disk (IVD) are composed of regions with large mismatches in the mechanical properties, yet these regions are integrated through an extremely tough interface. To mimic the mechanical heterogeneity inherent in biological systems, we present here mechanically strong hydrogels consisting of hard and soft components joined together through a strong interface. Stratification of monomer solutions having different densities was used to create two layers of monomer solutions with an interlayer region of a few millimeters in thickness, at which the solutions mix completely. UV-initiated bulk copolymerization of stratified solutions of hydrophilic and hydrophobic monomers leads to the formation of supramol...
The design of hydrogels where multiple interpenetrating networks enable enhanced mechanical properti...
Despite the development of hydrogels with high mechanical properties, insufficient adhesion between ...
Mechanically robust and biomimicking scaffolds are needed for structural engineering of tissues such...
Many natural materials such as intervertebral disk (IVD) are composed of regions with large mismatch...
Many structures in nature, such as the squid beak, have a combination of stiff and soft parts with v...
Reinforcing hydrogels with a rigid scaffold is a promising method to greatly expand the mechanical a...
Significant progress has been achieved in the past years in the preparation of mechanically strong su...
Hydrogels are major components of the human body. To replace a damaged hydrogel in the body or suppo...
Inspired by the toughening mechanism of double-network (DN) gels, tough hydrogel composites with a s...
Despite the development of hydrogels with a wide range of mechanical properties, insufficient adhesi...
As swollen polymer networks in water, hydrogels are usually brittle. However, hydrogels with high to...
Inspired by the cellular design of plant tissue, we present an approach to make versatile, tough, hi...
This article is free to read on the publisher's website Despite intensive research, hydrogels curren...
Tough hydrogels with mechanical properties that resemble human soft tissues are promising for applic...
Many biological materials, such as the squid beak and the spinal disc, have a combination of stiff a...
The design of hydrogels where multiple interpenetrating networks enable enhanced mechanical properti...
Despite the development of hydrogels with high mechanical properties, insufficient adhesion between ...
Mechanically robust and biomimicking scaffolds are needed for structural engineering of tissues such...
Many natural materials such as intervertebral disk (IVD) are composed of regions with large mismatch...
Many structures in nature, such as the squid beak, have a combination of stiff and soft parts with v...
Reinforcing hydrogels with a rigid scaffold is a promising method to greatly expand the mechanical a...
Significant progress has been achieved in the past years in the preparation of mechanically strong su...
Hydrogels are major components of the human body. To replace a damaged hydrogel in the body or suppo...
Inspired by the toughening mechanism of double-network (DN) gels, tough hydrogel composites with a s...
Despite the development of hydrogels with a wide range of mechanical properties, insufficient adhesi...
As swollen polymer networks in water, hydrogels are usually brittle. However, hydrogels with high to...
Inspired by the cellular design of plant tissue, we present an approach to make versatile, tough, hi...
This article is free to read on the publisher's website Despite intensive research, hydrogels curren...
Tough hydrogels with mechanical properties that resemble human soft tissues are promising for applic...
Many biological materials, such as the squid beak and the spinal disc, have a combination of stiff a...
The design of hydrogels where multiple interpenetrating networks enable enhanced mechanical properti...
Despite the development of hydrogels with high mechanical properties, insufficient adhesion between ...
Mechanically robust and biomimicking scaffolds are needed for structural engineering of tissues such...