Patent
US 7,897,876Patent
Atlas literature
Patent
US 7,897,876Claims define the patent's legal scope. Independent claims stand alone; dependent claims (nested) narrow them. Click a claim to expand its dependents.
A conductor comprising: an aramid fiber; and at least one layer attached about said aramid fiber, said at least one layer comprising at least one of aligned carbon nanotubes and graphene platelets.
A conductor according to Claim 1 wherein said aligned carbon nanotubes comprise a plurality of conductive nano-scale material elements having a hexagonal crystalline carbon structure aligned along the length of each said nano- scale material element.
A conductor according to Claim 1 further comprising an outer coating substantially surrounding the plurality of conductive layers along an axial length thereof.
A conductor according to Claim 1 wherein said plurality of carbon nanotubes comprise single-walled, metallic carbon nanotubes.
A conductor according to Claim 1 wherein said aramid fiber comprises a chemically treated aramid fiber, the chemical treatment causing a partial dissolving of said fiber.
A conductor according to Claim 1 wherein said at least one of aligned carbon nanotubes and graphene platelets are aligned in a solvent and polymer solution before the passing of said aramid fiber through the solution in a direction substantially collinear with the alignment.
A conductor according to Claim 1 wherein said at least one layer is applied to said aramid fiber by passing said fiber through a solution that contains at least one of carbon nanotubes and graphene platelets.
A conductor according to Claim 1 wherein said at least one of carbon nanotubes and graphene platelets are de-bundled into substantially individual particles.
A method for fabricating a conductive wire comprising: aligning at least one of carbon nanotubes and graphene platelets dispersed within a solution; partially dissolving an aramid fiber through chemical treatment; passing the treated aramid fiber through the solution such that a portion of the at least one of carbon nanotubes and graphene platelets aligned and dispersed within the solution adhere to the treated aramid fiber; and washing and drying the fiber.
A method according to Claim 10 further comprising repeating the passing step and the washing and drying step to apply multiple layers of the at least one of carbon nanotubes and graphene platelets to the treated fiber.
A method according to Claim 10 further comprising separating the at least one of nanotubes and platelets such that those disbursed in the solution are predominately those that have a hexagonal crystalline carbon structure aligned along their length.
A method according to Claim 10 wherein aligning at least one of carbon nanotubes and graphene platelets dispersed within a solution comprises aligning the at least one of carbon nanotubes and graphene platelets using at least one of an electric field and a magnetic field.
A method for fabricating a conductor comprising: partially dissolving an aramid fiber through chemical treatment; and adhering at least one of aligned carbon nanotubes and aligned graphene platelets to the partially dissolved aramid fiber.
A method according to Claim 15 wherein adhering at least one of aligned carbon nanotubes and aligned graphene platelets comprises: aligning the at least one of carbon nanotubes and graphene platelets within a solution utilizing at least one of an electric field and a magnetic field; and passing the fiber through the solution along an axis of alignment such that the at least one of carbon nanotubes and graphene platelets adhere to the fiber.
A method according to Claim 15 wherein adhering at least one of aligned carbon nanotubes and aligned graphene platelets comprises adhering single-walled carbon nanotubes to the fiber.
A method according to Claim 15 further comprising: -14- 08-0850A (24691-296) washing and drying the fiber after adhering at least one of carbon nanotubes and graphene platelets thereto; and repeating the adhering step and the washing and drying step until a desired number of layers or a desired quantity of the at least one of carbon nanotubes and graphene platelets is adhered to the aramid fiber.
Layer stacks claimed or described, ordered top of device to substrate.
high-conductivity wire conductor
Materials described outside the worked examples.
aramid fiber
aligned carbon nanotubes
Patent
Atlas literature
Patent
US 7,897,876Claims define the patent's legal scope. Independent claims stand alone; dependent claims (nested) narrow them. Click a claim to expand its dependents.
A conductor comprising: an aramid fiber; and at least one layer attached about said aramid fiber, said at least one layer comprising at least one of aligned carbon nanotubes and graphene platelets.
A conductor according to Claim 1 wherein said aligned carbon nanotubes comprise a plurality of conductive nano-scale material elements having a hexagonal crystalline carbon structure aligned along the length of each said nano- scale material element.
A conductor according to Claim 1 further comprising an outer coating substantially surrounding the plurality of conductive layers along an axial length thereof.
A conductor according to Claim 1 wherein said plurality of carbon nanotubes comprise single-walled, metallic carbon nanotubes.
A conductor according to Claim 1 wherein said aramid fiber comprises a chemically treated aramid fiber, the chemical treatment causing a partial dissolving of said fiber.
A conductor according to Claim 1 wherein said at least one of aligned carbon nanotubes and graphene platelets are aligned in a solvent and polymer solution before the passing of said aramid fiber through the solution in a direction substantially collinear with the alignment.
A conductor according to Claim 1 wherein said at least one layer is applied to said aramid fiber by passing said fiber through a solution that contains at least one of carbon nanotubes and graphene platelets.
A conductor according to Claim 1 wherein said at least one of carbon nanotubes and graphene platelets are de-bundled into substantially individual particles.
A method for fabricating a conductive wire comprising: aligning at least one of carbon nanotubes and graphene platelets dispersed within a solution; partially dissolving an aramid fiber through chemical treatment; passing the treated aramid fiber through the solution such that a portion of the at least one of carbon nanotubes and graphene platelets aligned and dispersed within the solution adhere to the treated aramid fiber; and washing and drying the fiber.
A method according to Claim 10 further comprising repeating the passing step and the washing and drying step to apply multiple layers of the at least one of carbon nanotubes and graphene platelets to the treated fiber.
A method according to Claim 10 further comprising separating the at least one of nanotubes and platelets such that those disbursed in the solution are predominately those that have a hexagonal crystalline carbon structure aligned along their length.
A method according to Claim 10 wherein aligning at least one of carbon nanotubes and graphene platelets dispersed within a solution comprises aligning the at least one of carbon nanotubes and graphene platelets using at least one of an electric field and a magnetic field.
A method for fabricating a conductor comprising: partially dissolving an aramid fiber through chemical treatment; and adhering at least one of aligned carbon nanotubes and aligned graphene platelets to the partially dissolved aramid fiber.
A method according to Claim 15 wherein adhering at least one of aligned carbon nanotubes and aligned graphene platelets comprises: aligning the at least one of carbon nanotubes and graphene platelets within a solution utilizing at least one of an electric field and a magnetic field; and passing the fiber through the solution along an axis of alignment such that the at least one of carbon nanotubes and graphene platelets adhere to the fiber.
A method according to Claim 15 wherein adhering at least one of aligned carbon nanotubes and aligned graphene platelets comprises adhering single-walled carbon nanotubes to the fiber.
A method according to Claim 15 further comprising: -14- 08-0850A (24691-296) washing and drying the fiber after adhering at least one of carbon nanotubes and graphene platelets thereto; and repeating the adhering step and the washing and drying step until a desired number of layers or a desired quantity of the at least one of carbon nanotubes and graphene platelets is adhered to the aramid fiber.
Layer stacks claimed or described, ordered top of device to substrate.
high-conductivity wire conductor
Materials described outside the worked examples.
aramid fiber
aligned carbon nanotubes
Patent
Atlas literature
Patent
US 7,897,876Claims define the patent's legal scope. Independent claims stand alone; dependent claims (nested) narrow them. Click a claim to expand its dependents.
A conductor comprising: an aramid fiber; and at least one layer attached about said aramid fiber, said at least one layer comprising at least one of aligned carbon nanotubes and graphene platelets.
A conductor according to Claim 1 wherein said aligned carbon nanotubes comprise a plurality of conductive nano-scale material elements having a hexagonal crystalline carbon structure aligned along the length of each said nano- scale material element.
A conductor according to Claim 1 further comprising an outer coating substantially surrounding the plurality of conductive layers along an axial length thereof.
A conductor according to Claim 1 wherein said plurality of carbon nanotubes comprise single-walled, metallic carbon nanotubes.
A conductor according to Claim 1 wherein said aramid fiber comprises a chemically treated aramid fiber, the chemical treatment causing a partial dissolving of said fiber.
A conductor according to Claim 1 wherein said at least one of aligned carbon nanotubes and graphene platelets are aligned in a solvent and polymer solution before the passing of said aramid fiber through the solution in a direction substantially collinear with the alignment.
A conductor according to Claim 1 wherein said at least one layer is applied to said aramid fiber by passing said fiber through a solution that contains at least one of carbon nanotubes and graphene platelets.
A conductor according to Claim 1 wherein said at least one of carbon nanotubes and graphene platelets are de-bundled into substantially individual particles.
A method for fabricating a conductive wire comprising: aligning at least one of carbon nanotubes and graphene platelets dispersed within a solution; partially dissolving an aramid fiber through chemical treatment; passing the treated aramid fiber through the solution such that a portion of the at least one of carbon nanotubes and graphene platelets aligned and dispersed within the solution adhere to the treated aramid fiber; and washing and drying the fiber.
A method according to Claim 10 further comprising repeating the passing step and the washing and drying step to apply multiple layers of the at least one of carbon nanotubes and graphene platelets to the treated fiber.
A method according to Claim 10 further comprising separating the at least one of nanotubes and platelets such that those disbursed in the solution are predominately those that have a hexagonal crystalline carbon structure aligned along their length.
A method according to Claim 10 wherein aligning at least one of carbon nanotubes and graphene platelets dispersed within a solution comprises aligning the at least one of carbon nanotubes and graphene platelets using at least one of an electric field and a magnetic field.
A method for fabricating a conductor comprising: partially dissolving an aramid fiber through chemical treatment; and adhering at least one of aligned carbon nanotubes and aligned graphene platelets to the partially dissolved aramid fiber.
A method according to Claim 15 wherein adhering at least one of aligned carbon nanotubes and aligned graphene platelets comprises: aligning the at least one of carbon nanotubes and graphene platelets within a solution utilizing at least one of an electric field and a magnetic field; and passing the fiber through the solution along an axis of alignment such that the at least one of carbon nanotubes and graphene platelets adhere to the fiber.
A method according to Claim 15 wherein adhering at least one of aligned carbon nanotubes and aligned graphene platelets comprises adhering single-walled carbon nanotubes to the fiber.
A method according to Claim 15 further comprising: -14- 08-0850A (24691-296) washing and drying the fiber after adhering at least one of carbon nanotubes and graphene platelets thereto; and repeating the adhering step and the washing and drying step until a desired number of layers or a desired quantity of the at least one of carbon nanotubes and graphene platelets is adhered to the aramid fiber.
Layer stacks claimed or described, ordered top of device to substrate.
high-conductivity wire conductor
Materials described outside the worked examples.
aramid fiber
aligned carbon nanotubes
Patent
Atlas literature
Patent
US 7,897,876Claims define the patent's legal scope. Independent claims stand alone; dependent claims (nested) narrow them. Click a claim to expand its dependents.
A conductor comprising: an aramid fiber; and at least one layer attached about said aramid fiber, said at least one layer comprising at least one of aligned carbon nanotubes and graphene platelets.
A conductor according to Claim 1 wherein said aligned carbon nanotubes comprise a plurality of conductive nano-scale material elements having a hexagonal crystalline carbon structure aligned along the length of each said nano- scale material element.
A conductor according to Claim 1 further comprising an outer coating substantially surrounding the plurality of conductive layers along an axial length thereof.
A conductor according to Claim 1 wherein said plurality of carbon nanotubes comprise single-walled, metallic carbon nanotubes.
A conductor according to Claim 1 wherein said aramid fiber comprises a chemically treated aramid fiber, the chemical treatment causing a partial dissolving of said fiber.
A conductor according to Claim 1 wherein said at least one of aligned carbon nanotubes and graphene platelets are aligned in a solvent and polymer solution before the passing of said aramid fiber through the solution in a direction substantially collinear with the alignment.
A conductor according to Claim 1 wherein said at least one layer is applied to said aramid fiber by passing said fiber through a solution that contains at least one of carbon nanotubes and graphene platelets.
A conductor according to Claim 1 wherein said at least one of carbon nanotubes and graphene platelets are de-bundled into substantially individual particles.
A method for fabricating a conductive wire comprising: aligning at least one of carbon nanotubes and graphene platelets dispersed within a solution; partially dissolving an aramid fiber through chemical treatment; passing the treated aramid fiber through the solution such that a portion of the at least one of carbon nanotubes and graphene platelets aligned and dispersed within the solution adhere to the treated aramid fiber; and washing and drying the fiber.
A method according to Claim 10 further comprising repeating the passing step and the washing and drying step to apply multiple layers of the at least one of carbon nanotubes and graphene platelets to the treated fiber.
A method according to Claim 10 further comprising separating the at least one of nanotubes and platelets such that those disbursed in the solution are predominately those that have a hexagonal crystalline carbon structure aligned along their length.
A method according to Claim 10 wherein aligning at least one of carbon nanotubes and graphene platelets dispersed within a solution comprises aligning the at least one of carbon nanotubes and graphene platelets using at least one of an electric field and a magnetic field.
A method for fabricating a conductor comprising: partially dissolving an aramid fiber through chemical treatment; and adhering at least one of aligned carbon nanotubes and aligned graphene platelets to the partially dissolved aramid fiber.
A method according to Claim 15 wherein adhering at least one of aligned carbon nanotubes and aligned graphene platelets comprises: aligning the at least one of carbon nanotubes and graphene platelets within a solution utilizing at least one of an electric field and a magnetic field; and passing the fiber through the solution along an axis of alignment such that the at least one of carbon nanotubes and graphene platelets adhere to the fiber.
A method according to Claim 15 wherein adhering at least one of aligned carbon nanotubes and aligned graphene platelets comprises adhering single-walled carbon nanotubes to the fiber.
A method according to Claim 15 further comprising: -14- 08-0850A (24691-296) washing and drying the fiber after adhering at least one of carbon nanotubes and graphene platelets thereto; and repeating the adhering step and the washing and drying step until a desired number of layers or a desired quantity of the at least one of carbon nanotubes and graphene platelets is adhered to the aramid fiber.
Layer stacks claimed or described, ordered top of device to substrate.
high-conductivity wire conductor
Materials described outside the worked examples.
aramid fiber
aligned carbon nanotubes
single-walled metallic carbon nanotubes
chemically treated aramid fiber
single-walled metallic carbon nanotubes
chemically treated aramid fiber
single-walled metallic carbon nanotubes
chemically treated aramid fiber
single-walled metallic carbon nanotubes
chemically treated aramid fiber
