Graphene oxide (GO) is increasingly investigated as a reinforcing nanofiller for various hydrogels for biomedical applications for its superior mechanical strength. However, the reinforcing mechanism of GO in different hydrogel conditions has not been extensively explored and elucidated to date. Herein, we systematically examine the effects of various types of precursor molecules (monomers vs. macromers) as well as mode of GO incorporation (physical vs. covalent) on the mechanical properties of resulting composite hydrogels. In addition, incorporation of GO is also controlled by using either unmodified GO or methacrylic GO (MGO) which allows for covalent incorporation. The results in this study demonstrate that the interaction between GO an...
Superior mechanical properties and self-healing are two hot topics in hydrogel science due to their ...
Hydrogels consisting of reactive monomers can respond to external stimuli, which is promising for ma...
International audienceThermoresponsive hydrogels have enormous potential e.g., as sensors, actuators...
Graphene oxide (GO) is increasingly investigated as a reinforcing nanofiller for various hydrogels f...
Graphene oxide (GO) is increasingly investigated as a reinforcing nanofiller for various hydrogels f...
Graphene-based materials are useful reinforcing agents to modify the mechanical properties of hydrog...
Graphene-based materials are useful reinforcing agents to modify the mechanical properties of hydrog...
Graphene-based materials are useful reinforcing agents to modify the mechanical properties of hydrog...
In this study we mixed low concentrations of graphene oxide (GO) with microgel (MG) particles and fo...
Polymer-based materials, such as fibers, hydrogels, and elastomers, are widely used in biomedical ap...
Graphene-based materials are useful reinforcing agents to modify the mechanical properties of hydrog...
Nanofiller-reinforced polymer nanocomposites can be used to improve the mechanical, thermal, electri...
In this work, graphene oxide (GO) and vinyl modified GO (V-GO)-based nanocomposite hydrogels with im...
Blood-contacting devices are increasingly important for the management of cardiovascular diseases. P...
Along with the development of nanomaterials and nanotechnology, graphene has attracted great attenti...
Superior mechanical properties and self-healing are two hot topics in hydrogel science due to their ...
Hydrogels consisting of reactive monomers can respond to external stimuli, which is promising for ma...
International audienceThermoresponsive hydrogels have enormous potential e.g., as sensors, actuators...
Graphene oxide (GO) is increasingly investigated as a reinforcing nanofiller for various hydrogels f...
Graphene oxide (GO) is increasingly investigated as a reinforcing nanofiller for various hydrogels f...
Graphene-based materials are useful reinforcing agents to modify the mechanical properties of hydrog...
Graphene-based materials are useful reinforcing agents to modify the mechanical properties of hydrog...
Graphene-based materials are useful reinforcing agents to modify the mechanical properties of hydrog...
In this study we mixed low concentrations of graphene oxide (GO) with microgel (MG) particles and fo...
Polymer-based materials, such as fibers, hydrogels, and elastomers, are widely used in biomedical ap...
Graphene-based materials are useful reinforcing agents to modify the mechanical properties of hydrog...
Nanofiller-reinforced polymer nanocomposites can be used to improve the mechanical, thermal, electri...
In this work, graphene oxide (GO) and vinyl modified GO (V-GO)-based nanocomposite hydrogels with im...
Blood-contacting devices are increasingly important for the management of cardiovascular diseases. P...
Along with the development of nanomaterials and nanotechnology, graphene has attracted great attenti...
Superior mechanical properties and self-healing are two hot topics in hydrogel science due to their ...
Hydrogels consisting of reactive monomers can respond to external stimuli, which is promising for ma...
International audienceThermoresponsive hydrogels have enormous potential e.g., as sensors, actuators...