Abstract:
Provided are an electrode sensor and a method for fabricating the same. According to embodiments, an electrode sensor includes: an organic substrate including a polymer; an organic insulating pattern which is disposed on the organic substrate and has an opening through which the organic substrate is exposed; a conductive layer which is disposed on the organic substrate and within the opening of the organic insulating pattern; and a passivation pattern which is disposed on the organic insulating pattern and through which a portion of the conductive layer is exposed. The conductive layer may include a conductive polymer, and the conductive layer may be coupled to the organic substrate by a covalent bond.
Abstract:
Provide are an electrode sensor and a method of fabricating the same. the method may include providing a substrate with a first electrode, forming a resist layer on the substrate to cover the first electrode, patterning the resist layer to expose a portion of the first electrode, forming an insulating layer on the substrate, removing the insulating layer on the resist layer and the resist layer to form a well in the insulating layer, and forming a second electrode in the well to be electrically connected to the first electrode. According to the method, it is possible to prevent the first electrode from being damaged. In addition, the second electrode may be configured have an increased surface area, and thus, the electrode can have low impedance.
Abstract:
Disclosed are a neural electrode for measuring a neural signal and a method for manufacturing the same. The method includes forming a bottom electrode on a substrate, forming a passivation layer exposing a portion of the bottom electrode, forming a metal layer including a gold nano-structure and a silver nano-structure on the bottom electrode, selectively forming the gold nano-structure having porosity by selectively removing the silver nano-structure, forming lower nano-particles on an inner sidewall of the gold nano-structure, and forming an upper nano-coating layer on the lower nano-particles and the inner sidewall of the gold nano-structure.
Abstract:
Provided is an electrode assembly which may be manufactured by providing a first substrate and a second substrate, plasma treating the first substrate, forming an electrode on the first substrate, and thermally compressing the first substrate and the second substrate, with the electrode therebetween, wherein each of the first substrate and the second substrate includes a fluorine-based polymer.
Abstract:
Provided are a neural electrode for measuring a neural signal, and a method for manufacturing the same. The method for manufacturing the same includes forming an ITO electrode on a substrate, forming a passivation layer for exposing a portion of the ITO electrode, forming ITO nanowires on the ITO electrode, and forming a metal oxide on the ITO nanowires.
Abstract:
Disclosed are a neural electrode and a method of manufacturing the electrode, more particularly, a neural electrode includes a porous nanostructure; and an iridium oxide layer formed on the porous nanostructure and a method of manufacturing the neural electrode, improving an electrode efficiency by increasing a charge injection limit capacity and the like.
Abstract:
A mesoporous neuronal electrode using a surfactant and a method of making the same are disclosed. A mesoporous neuronal electrode according to an exemplary embodiment includes a first metal nanoparticle, a second metal nanoparticle or both of the first and second metal nanoparticles on a surface of the electrode.