Electroactive hydrogels have received increasing attention due to the possibility of being used in biomimetics, such as for soft robotics and artificial muscles. However, the applications are hindered by the poor mechanical properties and slow response time. To address these issues, in this study, supramolecular ionic polymer–carbon nanotube (SIPC) composite hydrogels were fabricated via in situ free radical polymerization. The polymer matrix consisted of carbon nanotubes (CNTs), styrene sulfonic sodium (SSNa), β-cyclodextrin (β-CD)-grafted acrylamide, and ferrocene (Fc)-grafted acrylamide, with the incorporation of SSNa serving as the ionic source. On applying an external voltage, the ions accumulate on one side of the matrix, leading to l...
Conductive hydrogels are rapidly rising as sensing materials for bioelectronics applications, but la...
Biocompatible, electrically conductive microfibers with superior mechanical properties have received...
Self-healing, adhesive conductive hydrogels are of great significance in wearable electronic devices...
Nanocomposite hydrogels based on carbon nanotubes (CNTs) are known to possess remarkable stiffness, ...
Nanocomposite hydrogels based on carbon nanotubes (CNTs) are known to possess remarkable stiffness, ...
Hydrogels sensitive to electric current are usually made of polyelectrolytes and undergo erosion, sw...
Biocompatible and conductive polymer hydrogels are the subject of intensive research in the bioengin...
Research investigations involving pristine carbon nanotubes (CNTs) and their applications in diversi...
There is a growing interest in the development of ionic polymer-metal composites (IPMC) as sensors a...
High conductivity, large mechanical strength, and elongation are important parameters for soft elect...
Multifunctional polymer nanocomposites that simultaneously possess high modulus and strength, high t...
Biocompatible and conductive polymer hydrogels are the subject of intensive research in the bioengin...
Introducing multifunctional groups and inorganic material imparts xylan-based hydrogels with excelle...
Self-healing hydrogels with multifunctionality as a type of fascinating material show potential appl...
As emerging smart polymers, ionic polymer-metal composites (IPMCs) are playing more and more importa...
Conductive hydrogels are rapidly rising as sensing materials for bioelectronics applications, but la...
Biocompatible, electrically conductive microfibers with superior mechanical properties have received...
Self-healing, adhesive conductive hydrogels are of great significance in wearable electronic devices...
Nanocomposite hydrogels based on carbon nanotubes (CNTs) are known to possess remarkable stiffness, ...
Nanocomposite hydrogels based on carbon nanotubes (CNTs) are known to possess remarkable stiffness, ...
Hydrogels sensitive to electric current are usually made of polyelectrolytes and undergo erosion, sw...
Biocompatible and conductive polymer hydrogels are the subject of intensive research in the bioengin...
Research investigations involving pristine carbon nanotubes (CNTs) and their applications in diversi...
There is a growing interest in the development of ionic polymer-metal composites (IPMC) as sensors a...
High conductivity, large mechanical strength, and elongation are important parameters for soft elect...
Multifunctional polymer nanocomposites that simultaneously possess high modulus and strength, high t...
Biocompatible and conductive polymer hydrogels are the subject of intensive research in the bioengin...
Introducing multifunctional groups and inorganic material imparts xylan-based hydrogels with excelle...
Self-healing hydrogels with multifunctionality as a type of fascinating material show potential appl...
As emerging smart polymers, ionic polymer-metal composites (IPMCs) are playing more and more importa...
Conductive hydrogels are rapidly rising as sensing materials for bioelectronics applications, but la...
Biocompatible, electrically conductive microfibers with superior mechanical properties have received...
Self-healing, adhesive conductive hydrogels are of great significance in wearable electronic devices...