The emergence of flexible and stretchable electronic components expands the range of applications of electronic devices. Flexible devices are ideally suited for electronic biointerfaces because of mechanically permissive structures that conform to curvilinear structures found in native tissue. Most electronic materials used in these applications exhibit elastic moduli on the order of 0.1–1 MPa. However, many electronically excitable tissues exhibit elasticities in the range of 1–10 kPa, several orders of magnitude smaller than existing components used in flexible devices. This work describes the use of biologically derived heparins as scaffold materials for fabricating networks with hybrid electronic/ionic conductivity and ultracompliant me...
Bioelectronics is an interdisciplinary field of materials science, electrical engineering, and biote...
The application of soft hydrogels to stretchable devices has attracted increasing attention in defor...
Cross-linking biomolecules with electroconductive nanostructures through noncovalent interactions ca...
lexible electronics that utilize bendable and foldable components have poten-tially broad impact inm...
High conductivity, large mechanical strength, and elongation are important parameters for soft elect...
Electrically conductive materials that mimic physical and biological properties of tissues are urgen...
As scientists discovered that raw neurological signals could translate into bioelectric information,...
Abstract Electrically conductive materials that mimic physical and biological properties of tissues...
Synthetic conductive biopolymers have gained increasing interest in tissue engineering, as they can ...
The formation of hybrid bioactive and inherently conductive constructs of composites formed from pol...
Conducting polymers (CPs) have exciting potential as scaffolds for tissue engineering, typically app...
Electrically conductive hydrogels have recently generated much attention, as they have significant p...
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...
Neuroprosthetic interventions are strategies aimed at treating a wide range of neurological disorder...
Bioelectronics is an interdisciplinary field of materials science, electrical engineering, and biote...
The application of soft hydrogels to stretchable devices has attracted increasing attention in defor...
Cross-linking biomolecules with electroconductive nanostructures through noncovalent interactions ca...
lexible electronics that utilize bendable and foldable components have poten-tially broad impact inm...
High conductivity, large mechanical strength, and elongation are important parameters for soft elect...
Electrically conductive materials that mimic physical and biological properties of tissues are urgen...
As scientists discovered that raw neurological signals could translate into bioelectric information,...
Abstract Electrically conductive materials that mimic physical and biological properties of tissues...
Synthetic conductive biopolymers have gained increasing interest in tissue engineering, as they can ...
The formation of hybrid bioactive and inherently conductive constructs of composites formed from pol...
Conducting polymers (CPs) have exciting potential as scaffolds for tissue engineering, typically app...
Electrically conductive hydrogels have recently generated much attention, as they have significant p...
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...
Neuroprosthetic interventions are strategies aimed at treating a wide range of neurological disorder...
Bioelectronics is an interdisciplinary field of materials science, electrical engineering, and biote...
The application of soft hydrogels to stretchable devices has attracted increasing attention in defor...
Cross-linking biomolecules with electroconductive nanostructures through noncovalent interactions ca...