Cross-linking biomolecules with electroconductive nanostructures through noncovalent interactions can result in modular networks with defined biological functions and physical properties such as electric conductivity and viscoelasticity. Moreover, the resulting matrices can exhibit interesting features caused by the dynamic assembly process, such as self-healing and molecular ordering. In this paper, we present a physical hydrogel system formed by mixing peptide–polyethylene glycol and poly(3,4-ethylenedioxythiophene):polystyrene sulfonate. This combinatorial approach, which uses different modular building blocks, could lead to high tunability on aspects of rheology and electrical impedance. The proposed physical hydrogel system is charact...
Conducting polymer hydrogels (CPHs) emerge as excellent functional materials, as they harness the ad...
Intrinsically conducting polymers (ICPs) are widely used to fabricate biomaterials; their applicatio...
Conductive, biocompatible materials, such as conductive polymers (CPs), hold a great deal of promise...
Cross-linking biomolecules with electroconductive nanostructures through noncovalent interactions ca...
Electrically conductive materials that mimic physical and biological properties of tissues are urgen...
Abstract Electrically conductive materials that mimic physical and biological properties of tissues...
The study of cells responding to an electroconductive environment is impeded by the lack of a method...
Electroconductive hydrogels (ECHs) are highly hydrated 3D networks generated through the incorporati...
Synthetic conductive biopolymers have gained increasing interest in tissue engineering, as they can ...
This work describes the development of electroconductive hydrogels as injectable matrices for neural...
Tissue engineering aims to combine cells, soluble cues, and biomaterials to repair tissue injuries t...
Conducting polymer hydrogels (CPH) have attracted interest for use in electronics, biomedical device...
Conducting polymers (CPs) have exciting potential as scaffolds for tissue engineering, typically app...
Functionalized poly(ethylene dioxythiophene) (f-PEDOT) was copolymerized with two vinyl monomers of ...
Functionalized poly(ethylene dioxythiophene) (PEDOT) was copolymerized with two vinyl monomers of di...
Conducting polymer hydrogels (CPHs) emerge as excellent functional materials, as they harness the ad...
Intrinsically conducting polymers (ICPs) are widely used to fabricate biomaterials; their applicatio...
Conductive, biocompatible materials, such as conductive polymers (CPs), hold a great deal of promise...
Cross-linking biomolecules with electroconductive nanostructures through noncovalent interactions ca...
Electrically conductive materials that mimic physical and biological properties of tissues are urgen...
Abstract Electrically conductive materials that mimic physical and biological properties of tissues...
The study of cells responding to an electroconductive environment is impeded by the lack of a method...
Electroconductive hydrogels (ECHs) are highly hydrated 3D networks generated through the incorporati...
Synthetic conductive biopolymers have gained increasing interest in tissue engineering, as they can ...
This work describes the development of electroconductive hydrogels as injectable matrices for neural...
Tissue engineering aims to combine cells, soluble cues, and biomaterials to repair tissue injuries t...
Conducting polymer hydrogels (CPH) have attracted interest for use in electronics, biomedical device...
Conducting polymers (CPs) have exciting potential as scaffolds for tissue engineering, typically app...
Functionalized poly(ethylene dioxythiophene) (f-PEDOT) was copolymerized with two vinyl monomers of ...
Functionalized poly(ethylene dioxythiophene) (PEDOT) was copolymerized with two vinyl monomers of di...
Conducting polymer hydrogels (CPHs) emerge as excellent functional materials, as they harness the ad...
Intrinsically conducting polymers (ICPs) are widely used to fabricate biomaterials; their applicatio...
Conductive, biocompatible materials, such as conductive polymers (CPs), hold a great deal of promise...