Patent
US 10,839,975Patent
Atlas literature
Patent
US 10,839,975Patent drawings and their descriptions. Click a drawing to enlarge it.
FIG. 1 by a line resembling an alkane chain. However, as understood by one of ordinary skill in the art, such a depiction is for illustration purposes only. In …
FIG. 2, a coated electronic component (200) comprises an electronic component (210) and a graphene coating layer (220) disposed on a surface (212) of the …
FIG. 3 illustrates a side view of a coated electronic component according to one implementation described herein. DETAILED DESCRIPTION [0011] Implementations …
Claims define the patent's legal scope. Independent claims stand alone; dependent claims (nested) narrow them. Click a claim to expand its dependents.
1-8. Canceled
Canceled
The method of claim 36, wherein the electronic apparatus is disposed within a passenger cabin or cockpit of an aircraft. Previously presented
10-20. Canceled
Canceled
A method of increasing a service lifetime of an electronic apparatus disposed within a compartment of a vehicle or on an exterior of a vehicle, the method comprising: disposing a layer of electrically insulating material on an electronic component of the electronic apparatus; disposing a single graphene coating layer on the layer of electrically insulating material, the electronic component being a device chosen from an integrated circuit, transformer, resistor, capacitor, inductor, electrical connection or circuit board, the graphene coating layer being substantially continuous across the entire surface of the electronic component; and disposing the electronic apparatus within a compartment of a vehicle or on an exterior of the vehicle so that the graphene coating layer is exposed to an external environment, the graphene coating layer thereby protecting the electronic component from the external environment, wherein the single graphene coating layer consists of a single layer of graphene tubes; wherein the graphene tubes have a horizontal or substantially horizontal orientation; wherein the electronic apparatus exhibits at least a 10 percent improvement in environmental testing performance compared to an otherwise equivalent graphene coating layer- free electronic apparatus, the environmental testing performance comprising performance in a waterproofness test, acetic acid test, sugar solution test, or methyl alcohol test. Previously presented
The method of claim 21, wherein the electronic apparatus exhibits at least a 10 percent improvement in two or more of the waterproofness test, acetic acid test, sugar solution test, and methyl alcohol test. Previously presented
The method of claim 21, wherein the electronic apparatus is disposed within a passenger cabin or cockpit of an aircraft. Previously presented
A method of increasing a service lifetime of an electronic apparatus disposed within a compartment of a vehicle or on an exterior of a vehicle, the method comprising: disposing a layer of electrically insulating material on an electronic component of the electronic apparatus; disposing a graphene coating layer on the layer of electrically insulating material, the electronic component being a device chosen from an integrated circuit, transformer,,, inductor, o r circuit board, the graphene coating layer being substantially continuous across the entire surface of the electronic component; and disposing the electronic apparatus within a compartment of a vehicle or on an exterior of the vehicle so that the graphene coating layer is exposed to an external environment chosen from a passenger compartment, a cockpit or an environment outside the vehicle, the graphene coating layer thereby protecting the electronic component from the external environment during use of the electronic component, wherein the graphene coating layer consists of a plurality of graphene platelets, having a flat planar structure, and connected by micro-wires; wherein the graphene platelets have a diameter from 50 p m to 200 pm; wherein the micro-wires are formed from metallic nanoparticles, polymer microspheres, or a combination thereof[[;]],,,,,. Currently amended
The method of claim 24, wherein the electronic apparatus exhibits at least a 10 percent improvement in two or more of the waterproofness test, acetic acid test, sugar solution test, and methyl alcohol test. Previously presented
The method of claim 24, wherein the graphene platelets have a width to length ratio from about 1:2 to about 1:7.5. Previously presented
The method of claim 24, wherein the width to length ratio of the graphene platelets are from about 1:2.6 to about 1:7.5. Previously presented
The method of claim 24, wherein the width to length ratio of the graphene platelets are from about 1:2 to about 1:3. Previously presented
The method of claim 24, wherein the graphene platelets have a diameter from 50 p m to 150 pm. Previously presented
The method of claim 24, wherein the electronic component is an integrated circuit. Previously presented
The method of claim 24, wherein the graphene layer is disposed on the exterior of the vehicle and is exposed to an external environment outside the vehicle, the vehicle being an aerospace vehicle. Previously presented
50 The method of claim 24, wherein the electronic apparatus exhibits at least a 10 percent improvement in environmental testing performance compared to an otherwise equivalent graphene coating layer-free electronic apparatus, the environmental testing performance comprising performance in a waterproofness test, acetic acid test, sugar solution test, or methyl alcohol test. New
The method of claim 38, wherein the electronic apparatus is disposed within a passenger cabin or cockpit of an aircraft. Previously presented
Canceled
Canceled
Canceled
Canceled
Canceled
The method of claim [[1]] 21, wherein the electronic component is an integrated circuit. Currently amended
Canceled
The method of claim [[1]] 21, wherein the graphene layer is disposed on the exterior of the vehicle and is exposed to an external environment outside the vehicle, the vehicle being an aerospace vehicle. Currently amended
The method of claim 39, wherein the electronic component is a sensor. Previously presented
Canceled
A method of increasing a service lifetime of an electronic apparatus disposed within a compartment of a vehicle or on an exterior of a vehicle, the method comprising: disposing a layer of electrically insulating material on an electronic component of the electronic apparatus; disposing a graphene coating layer on the layer of electrically insulating material, the electronic component being a device chosen from an integrated circuit, transformer, resistor, capacitor, inductor or circuit board, the graphene coating layer being substantially continuous across the entire surface of the electronic component; and disposing the electronic apparatus within a compartment of a vehicle or on an exterior of the vehicle so that the graphene coating layer is exposed to an external environment chosen from a passenger compartment, a cockpit or an environment outside the vehicle, the graphene coating layer thereby protecting the electronic component from the external environment during use of the electronic component, wherein the graphene coating layer consists of one or more atomic layers of graphene,,,,. Currently amended
The method of claim 43, wherein the electronic component is disposed on the exterior of the vehicle and is exposed to an external environment outside of the vehicle. Previously presented
The method of claim 43, wherein the electronic component is a device chosen from an integrated circuit, transformer or circuit board. Previously presented
The method of claim 43, wherein the electronic component is an integrated circuit. Previously presented
The method of claim 43, wherein the graphene coating layer comprises between 1 and atomic layers of graphene. Previously presented
The method of claim 43, wherein the electronic apparatus exhibits at least a 10 percent improvement in environmental testing performance compared to an otherwise equivalent graphene coating layer-free electronic apparatus, the environmental testing performance comprising performance in a waterproofness test, acetic acid test, sugar solution test, or methyl alcohol test. New
Layer stacks claimed or described, ordered top of device to substrate.
graphene-coated electronic component in vehicle
Materials described outside the worked examples.
graphene coating layer
graphene tubes
Measurements and analyses referenced in the patent, with their drawing references.
FIG. 2, a coated electronic component (200) comprises an electronic component (210) and a graphene coating layer (220) disposed on a surface (212) of the …
Performance values and ranges asserted in the specification or claims.
| Property | Value | Material |
|---|---|---|
graphene coating layer average thickness | ≤ 300 nm | graphene coating layer |
Voltage | 50–250 V |
Patent
Atlas literature
Patent
US 10,839,975Patent drawings and their descriptions. Click a drawing to enlarge it.
FIG. 1 by a line resembling an alkane chain. However, as understood by one of ordinary skill in the art, such a depiction is for illustration purposes only. In …
FIG. 2, a coated electronic component (200) comprises an electronic component (210) and a graphene coating layer (220) disposed on a surface (212) of the …
FIG. 3 illustrates a side view of a coated electronic component according to one implementation described herein. DETAILED DESCRIPTION [0011] Implementations …
Claims define the patent's legal scope. Independent claims stand alone; dependent claims (nested) narrow them. Click a claim to expand its dependents.
1-8. Canceled
Canceled
The method of claim 36, wherein the electronic apparatus is disposed within a passenger cabin or cockpit of an aircraft. Previously presented
10-20. Canceled
Canceled
A method of increasing a service lifetime of an electronic apparatus disposed within a compartment of a vehicle or on an exterior of a vehicle, the method comprising: disposing a layer of electrically insulating material on an electronic component of the electronic apparatus; disposing a single graphene coating layer on the layer of electrically insulating material, the electronic component being a device chosen from an integrated circuit, transformer, resistor, capacitor, inductor, electrical connection or circuit board, the graphene coating layer being substantially continuous across the entire surface of the electronic component; and disposing the electronic apparatus within a compartment of a vehicle or on an exterior of the vehicle so that the graphene coating layer is exposed to an external environment, the graphene coating layer thereby protecting the electronic component from the external environment, wherein the single graphene coating layer consists of a single layer of graphene tubes; wherein the graphene tubes have a horizontal or substantially horizontal orientation; wherein the electronic apparatus exhibits at least a 10 percent improvement in environmental testing performance compared to an otherwise equivalent graphene coating layer- free electronic apparatus, the environmental testing performance comprising performance in a waterproofness test, acetic acid test, sugar solution test, or methyl alcohol test. Previously presented
The method of claim 21, wherein the electronic apparatus exhibits at least a 10 percent improvement in two or more of the waterproofness test, acetic acid test, sugar solution test, and methyl alcohol test. Previously presented
The method of claim 21, wherein the electronic apparatus is disposed within a passenger cabin or cockpit of an aircraft. Previously presented
A method of increasing a service lifetime of an electronic apparatus disposed within a compartment of a vehicle or on an exterior of a vehicle, the method comprising: disposing a layer of electrically insulating material on an electronic component of the electronic apparatus; disposing a graphene coating layer on the layer of electrically insulating material, the electronic component being a device chosen from an integrated circuit, transformer,,, inductor, o r circuit board, the graphene coating layer being substantially continuous across the entire surface of the electronic component; and disposing the electronic apparatus within a compartment of a vehicle or on an exterior of the vehicle so that the graphene coating layer is exposed to an external environment chosen from a passenger compartment, a cockpit or an environment outside the vehicle, the graphene coating layer thereby protecting the electronic component from the external environment during use of the electronic component, wherein the graphene coating layer consists of a plurality of graphene platelets, having a flat planar structure, and connected by micro-wires; wherein the graphene platelets have a diameter from 50 p m to 200 pm; wherein the micro-wires are formed from metallic nanoparticles, polymer microspheres, or a combination thereof[[;]],,,,,. Currently amended
The method of claim 24, wherein the electronic apparatus exhibits at least a 10 percent improvement in two or more of the waterproofness test, acetic acid test, sugar solution test, and methyl alcohol test. Previously presented
The method of claim 24, wherein the graphene platelets have a width to length ratio from about 1:2 to about 1:7.5. Previously presented
The method of claim 24, wherein the width to length ratio of the graphene platelets are from about 1:2.6 to about 1:7.5. Previously presented
The method of claim 24, wherein the width to length ratio of the graphene platelets are from about 1:2 to about 1:3. Previously presented
The method of claim 24, wherein the graphene platelets have a diameter from 50 p m to 150 pm. Previously presented
The method of claim 24, wherein the electronic component is an integrated circuit. Previously presented
The method of claim 24, wherein the graphene layer is disposed on the exterior of the vehicle and is exposed to an external environment outside the vehicle, the vehicle being an aerospace vehicle. Previously presented
50 The method of claim 24, wherein the electronic apparatus exhibits at least a 10 percent improvement in environmental testing performance compared to an otherwise equivalent graphene coating layer-free electronic apparatus, the environmental testing performance comprising performance in a waterproofness test, acetic acid test, sugar solution test, or methyl alcohol test. New
The method of claim 38, wherein the electronic apparatus is disposed within a passenger cabin or cockpit of an aircraft. Previously presented
Canceled
Canceled
Canceled
Canceled
Canceled
The method of claim [[1]] 21, wherein the electronic component is an integrated circuit. Currently amended
Canceled
The method of claim [[1]] 21, wherein the graphene layer is disposed on the exterior of the vehicle and is exposed to an external environment outside the vehicle, the vehicle being an aerospace vehicle. Currently amended
The method of claim 39, wherein the electronic component is a sensor. Previously presented
Canceled
A method of increasing a service lifetime of an electronic apparatus disposed within a compartment of a vehicle or on an exterior of a vehicle, the method comprising: disposing a layer of electrically insulating material on an electronic component of the electronic apparatus; disposing a graphene coating layer on the layer of electrically insulating material, the electronic component being a device chosen from an integrated circuit, transformer, resistor, capacitor, inductor or circuit board, the graphene coating layer being substantially continuous across the entire surface of the electronic component; and disposing the electronic apparatus within a compartment of a vehicle or on an exterior of the vehicle so that the graphene coating layer is exposed to an external environment chosen from a passenger compartment, a cockpit or an environment outside the vehicle, the graphene coating layer thereby protecting the electronic component from the external environment during use of the electronic component, wherein the graphene coating layer consists of one or more atomic layers of graphene,,,,. Currently amended
The method of claim 43, wherein the electronic component is disposed on the exterior of the vehicle and is exposed to an external environment outside of the vehicle. Previously presented
The method of claim 43, wherein the electronic component is a device chosen from an integrated circuit, transformer or circuit board. Previously presented
The method of claim 43, wherein the electronic component is an integrated circuit. Previously presented
The method of claim 43, wherein the graphene coating layer comprises between 1 and atomic layers of graphene. Previously presented
The method of claim 43, wherein the electronic apparatus exhibits at least a 10 percent improvement in environmental testing performance compared to an otherwise equivalent graphene coating layer-free electronic apparatus, the environmental testing performance comprising performance in a waterproofness test, acetic acid test, sugar solution test, or methyl alcohol test. New
Layer stacks claimed or described, ordered top of device to substrate.
graphene-coated electronic component in vehicle
Materials described outside the worked examples.
graphene coating layer
graphene tubes
Measurements and analyses referenced in the patent, with their drawing references.
FIG. 2, a coated electronic component (200) comprises an electronic component (210) and a graphene coating layer (220) disposed on a surface (212) of the …
Performance values and ranges asserted in the specification or claims.
| Property | Value | Material |
|---|---|---|
graphene coating layer average thickness | ≤ 300 nm | graphene coating layer |
Voltage | 50–250 V |
Patent
Atlas literature
Patent
US 10,839,975Patent drawings and their descriptions. Click a drawing to enlarge it.
FIG. 1 by a line resembling an alkane chain. However, as understood by one of ordinary skill in the art, such a depiction is for illustration purposes only. In …
FIG. 2, a coated electronic component (200) comprises an electronic component (210) and a graphene coating layer (220) disposed on a surface (212) of the …
FIG. 3 illustrates a side view of a coated electronic component according to one implementation described herein. DETAILED DESCRIPTION [0011] Implementations …
Claims define the patent's legal scope. Independent claims stand alone; dependent claims (nested) narrow them. Click a claim to expand its dependents.
1-8. Canceled
Canceled
The method of claim 36, wherein the electronic apparatus is disposed within a passenger cabin or cockpit of an aircraft. Previously presented
10-20. Canceled
Canceled
A method of increasing a service lifetime of an electronic apparatus disposed within a compartment of a vehicle or on an exterior of a vehicle, the method comprising: disposing a layer of electrically insulating material on an electronic component of the electronic apparatus; disposing a single graphene coating layer on the layer of electrically insulating material, the electronic component being a device chosen from an integrated circuit, transformer, resistor, capacitor, inductor, electrical connection or circuit board, the graphene coating layer being substantially continuous across the entire surface of the electronic component; and disposing the electronic apparatus within a compartment of a vehicle or on an exterior of the vehicle so that the graphene coating layer is exposed to an external environment, the graphene coating layer thereby protecting the electronic component from the external environment, wherein the single graphene coating layer consists of a single layer of graphene tubes; wherein the graphene tubes have a horizontal or substantially horizontal orientation; wherein the electronic apparatus exhibits at least a 10 percent improvement in environmental testing performance compared to an otherwise equivalent graphene coating layer- free electronic apparatus, the environmental testing performance comprising performance in a waterproofness test, acetic acid test, sugar solution test, or methyl alcohol test. Previously presented
The method of claim 21, wherein the electronic apparatus exhibits at least a 10 percent improvement in two or more of the waterproofness test, acetic acid test, sugar solution test, and methyl alcohol test. Previously presented
The method of claim 21, wherein the electronic apparatus is disposed within a passenger cabin or cockpit of an aircraft. Previously presented
A method of increasing a service lifetime of an electronic apparatus disposed within a compartment of a vehicle or on an exterior of a vehicle, the method comprising: disposing a layer of electrically insulating material on an electronic component of the electronic apparatus; disposing a graphene coating layer on the layer of electrically insulating material, the electronic component being a device chosen from an integrated circuit, transformer,,, inductor, o r circuit board, the graphene coating layer being substantially continuous across the entire surface of the electronic component; and disposing the electronic apparatus within a compartment of a vehicle or on an exterior of the vehicle so that the graphene coating layer is exposed to an external environment chosen from a passenger compartment, a cockpit or an environment outside the vehicle, the graphene coating layer thereby protecting the electronic component from the external environment during use of the electronic component, wherein the graphene coating layer consists of a plurality of graphene platelets, having a flat planar structure, and connected by micro-wires; wherein the graphene platelets have a diameter from 50 p m to 200 pm; wherein the micro-wires are formed from metallic nanoparticles, polymer microspheres, or a combination thereof[[;]],,,,,. Currently amended
The method of claim 24, wherein the electronic apparatus exhibits at least a 10 percent improvement in two or more of the waterproofness test, acetic acid test, sugar solution test, and methyl alcohol test. Previously presented
The method of claim 24, wherein the graphene platelets have a width to length ratio from about 1:2 to about 1:7.5. Previously presented
The method of claim 24, wherein the width to length ratio of the graphene platelets are from about 1:2.6 to about 1:7.5. Previously presented
The method of claim 24, wherein the width to length ratio of the graphene platelets are from about 1:2 to about 1:3. Previously presented
The method of claim 24, wherein the graphene platelets have a diameter from 50 p m to 150 pm. Previously presented
The method of claim 24, wherein the electronic component is an integrated circuit. Previously presented
The method of claim 24, wherein the graphene layer is disposed on the exterior of the vehicle and is exposed to an external environment outside the vehicle, the vehicle being an aerospace vehicle. Previously presented
50 The method of claim 24, wherein the electronic apparatus exhibits at least a 10 percent improvement in environmental testing performance compared to an otherwise equivalent graphene coating layer-free electronic apparatus, the environmental testing performance comprising performance in a waterproofness test, acetic acid test, sugar solution test, or methyl alcohol test. New
The method of claim 38, wherein the electronic apparatus is disposed within a passenger cabin or cockpit of an aircraft. Previously presented
Canceled
Canceled
Canceled
Canceled
Canceled
The method of claim [[1]] 21, wherein the electronic component is an integrated circuit. Currently amended
Canceled
The method of claim [[1]] 21, wherein the graphene layer is disposed on the exterior of the vehicle and is exposed to an external environment outside the vehicle, the vehicle being an aerospace vehicle. Currently amended
The method of claim 39, wherein the electronic component is a sensor. Previously presented
Canceled
A method of increasing a service lifetime of an electronic apparatus disposed within a compartment of a vehicle or on an exterior of a vehicle, the method comprising: disposing a layer of electrically insulating material on an electronic component of the electronic apparatus; disposing a graphene coating layer on the layer of electrically insulating material, the electronic component being a device chosen from an integrated circuit, transformer, resistor, capacitor, inductor or circuit board, the graphene coating layer being substantially continuous across the entire surface of the electronic component; and disposing the electronic apparatus within a compartment of a vehicle or on an exterior of the vehicle so that the graphene coating layer is exposed to an external environment chosen from a passenger compartment, a cockpit or an environment outside the vehicle, the graphene coating layer thereby protecting the electronic component from the external environment during use of the electronic component, wherein the graphene coating layer consists of one or more atomic layers of graphene,,,,. Currently amended
The method of claim 43, wherein the electronic component is disposed on the exterior of the vehicle and is exposed to an external environment outside of the vehicle. Previously presented
The method of claim 43, wherein the electronic component is a device chosen from an integrated circuit, transformer or circuit board. Previously presented
The method of claim 43, wherein the electronic component is an integrated circuit. Previously presented
The method of claim 43, wherein the graphene coating layer comprises between 1 and atomic layers of graphene. Previously presented
The method of claim 43, wherein the electronic apparatus exhibits at least a 10 percent improvement in environmental testing performance compared to an otherwise equivalent graphene coating layer-free electronic apparatus, the environmental testing performance comprising performance in a waterproofness test, acetic acid test, sugar solution test, or methyl alcohol test. New
Layer stacks claimed or described, ordered top of device to substrate.
graphene-coated electronic component in vehicle
Materials described outside the worked examples.
graphene coating layer
graphene tubes
Measurements and analyses referenced in the patent, with their drawing references.
FIG. 2, a coated electronic component (200) comprises an electronic component (210) and a graphene coating layer (220) disposed on a surface (212) of the …
Performance values and ranges asserted in the specification or claims.
| Property | Value | Material |
|---|---|---|
graphene coating layer average thickness | ≤ 300 nm | graphene coating layer |
Voltage | 50–250 V |
Patent
Atlas literature
Patent
US 10,839,975Patent drawings and their descriptions. Click a drawing to enlarge it.
FIG. 1 by a line resembling an alkane chain. However, as understood by one of ordinary skill in the art, such a depiction is for illustration purposes only. In …
FIG. 2, a coated electronic component (200) comprises an electronic component (210) and a graphene coating layer (220) disposed on a surface (212) of the …
FIG. 3 illustrates a side view of a coated electronic component according to one implementation described herein. DETAILED DESCRIPTION [0011] Implementations …
Claims define the patent's legal scope. Independent claims stand alone; dependent claims (nested) narrow them. Click a claim to expand its dependents.
1-8. Canceled
Canceled
The method of claim 36, wherein the electronic apparatus is disposed within a passenger cabin or cockpit of an aircraft. Previously presented
10-20. Canceled
Canceled
A method of increasing a service lifetime of an electronic apparatus disposed within a compartment of a vehicle or on an exterior of a vehicle, the method comprising: disposing a layer of electrically insulating material on an electronic component of the electronic apparatus; disposing a single graphene coating layer on the layer of electrically insulating material, the electronic component being a device chosen from an integrated circuit, transformer, resistor, capacitor, inductor, electrical connection or circuit board, the graphene coating layer being substantially continuous across the entire surface of the electronic component; and disposing the electronic apparatus within a compartment of a vehicle or on an exterior of the vehicle so that the graphene coating layer is exposed to an external environment, the graphene coating layer thereby protecting the electronic component from the external environment, wherein the single graphene coating layer consists of a single layer of graphene tubes; wherein the graphene tubes have a horizontal or substantially horizontal orientation; wherein the electronic apparatus exhibits at least a 10 percent improvement in environmental testing performance compared to an otherwise equivalent graphene coating layer- free electronic apparatus, the environmental testing performance comprising performance in a waterproofness test, acetic acid test, sugar solution test, or methyl alcohol test. Previously presented
The method of claim 21, wherein the electronic apparatus exhibits at least a 10 percent improvement in two or more of the waterproofness test, acetic acid test, sugar solution test, and methyl alcohol test. Previously presented
The method of claim 21, wherein the electronic apparatus is disposed within a passenger cabin or cockpit of an aircraft. Previously presented
A method of increasing a service lifetime of an electronic apparatus disposed within a compartment of a vehicle or on an exterior of a vehicle, the method comprising: disposing a layer of electrically insulating material on an electronic component of the electronic apparatus; disposing a graphene coating layer on the layer of electrically insulating material, the electronic component being a device chosen from an integrated circuit, transformer,,, inductor, o r circuit board, the graphene coating layer being substantially continuous across the entire surface of the electronic component; and disposing the electronic apparatus within a compartment of a vehicle or on an exterior of the vehicle so that the graphene coating layer is exposed to an external environment chosen from a passenger compartment, a cockpit or an environment outside the vehicle, the graphene coating layer thereby protecting the electronic component from the external environment during use of the electronic component, wherein the graphene coating layer consists of a plurality of graphene platelets, having a flat planar structure, and connected by micro-wires; wherein the graphene platelets have a diameter from 50 p m to 200 pm; wherein the micro-wires are formed from metallic nanoparticles, polymer microspheres, or a combination thereof[[;]],,,,,. Currently amended
The method of claim 24, wherein the electronic apparatus exhibits at least a 10 percent improvement in two or more of the waterproofness test, acetic acid test, sugar solution test, and methyl alcohol test. Previously presented
The method of claim 24, wherein the graphene platelets have a width to length ratio from about 1:2 to about 1:7.5. Previously presented
The method of claim 24, wherein the width to length ratio of the graphene platelets are from about 1:2.6 to about 1:7.5. Previously presented
The method of claim 24, wherein the width to length ratio of the graphene platelets are from about 1:2 to about 1:3. Previously presented
The method of claim 24, wherein the graphene platelets have a diameter from 50 p m to 150 pm. Previously presented
The method of claim 24, wherein the electronic component is an integrated circuit. Previously presented
The method of claim 24, wherein the graphene layer is disposed on the exterior of the vehicle and is exposed to an external environment outside the vehicle, the vehicle being an aerospace vehicle. Previously presented
50 The method of claim 24, wherein the electronic apparatus exhibits at least a 10 percent improvement in environmental testing performance compared to an otherwise equivalent graphene coating layer-free electronic apparatus, the environmental testing performance comprising performance in a waterproofness test, acetic acid test, sugar solution test, or methyl alcohol test. New
The method of claim 38, wherein the electronic apparatus is disposed within a passenger cabin or cockpit of an aircraft. Previously presented
Canceled
Canceled
Canceled
Canceled
Canceled
The method of claim [[1]] 21, wherein the electronic component is an integrated circuit. Currently amended
Canceled
The method of claim [[1]] 21, wherein the graphene layer is disposed on the exterior of the vehicle and is exposed to an external environment outside the vehicle, the vehicle being an aerospace vehicle. Currently amended
The method of claim 39, wherein the electronic component is a sensor. Previously presented
Canceled
A method of increasing a service lifetime of an electronic apparatus disposed within a compartment of a vehicle or on an exterior of a vehicle, the method comprising: disposing a layer of electrically insulating material on an electronic component of the electronic apparatus; disposing a graphene coating layer on the layer of electrically insulating material, the electronic component being a device chosen from an integrated circuit, transformer, resistor, capacitor, inductor or circuit board, the graphene coating layer being substantially continuous across the entire surface of the electronic component; and disposing the electronic apparatus within a compartment of a vehicle or on an exterior of the vehicle so that the graphene coating layer is exposed to an external environment chosen from a passenger compartment, a cockpit or an environment outside the vehicle, the graphene coating layer thereby protecting the electronic component from the external environment during use of the electronic component, wherein the graphene coating layer consists of one or more atomic layers of graphene,,,,. Currently amended
The method of claim 43, wherein the electronic component is disposed on the exterior of the vehicle and is exposed to an external environment outside of the vehicle. Previously presented
The method of claim 43, wherein the electronic component is a device chosen from an integrated circuit, transformer or circuit board. Previously presented
The method of claim 43, wherein the electronic component is an integrated circuit. Previously presented
The method of claim 43, wherein the graphene coating layer comprises between 1 and atomic layers of graphene. Previously presented
The method of claim 43, wherein the electronic apparatus exhibits at least a 10 percent improvement in environmental testing performance compared to an otherwise equivalent graphene coating layer-free electronic apparatus, the environmental testing performance comprising performance in a waterproofness test, acetic acid test, sugar solution test, or methyl alcohol test. New
Layer stacks claimed or described, ordered top of device to substrate.
graphene-coated electronic component in vehicle
Materials described outside the worked examples.
graphene coating layer
graphene tubes
Measurements and analyses referenced in the patent, with their drawing references.
FIG. 2, a coated electronic component (200) comprises an electronic component (210) and a graphene coating layer (220) disposed on a surface (212) of the …
Performance values and ranges asserted in the specification or claims.
| Property | Value | Material |
|---|---|---|
graphene coating layer average thickness | ≤ 300 nm | graphene coating layer |
Voltage | 50–250 V |
graphene platelets
metallic nanoparticles
polymer microspheres
atomic layers of graphene
electrically insulating material
| — |
Thickness | 15–30 nm | — |
Thickness | 1–200 nm | — |
Thickness | 1–150 nm | — |
Thickness | 5–100 nm | — |
Thickness | 5–75 nm | — |
Thickness | 15–60 nm | — |
Thickness | 20–30 nm | — |
Thickness | 45–55 nm | — |
Thickness | 1–300 nm | — |
Thickness | 1–100 nm | — |
Thickness | 10–300 nm | — |
Thickness | 10–200 nm | — |
Thickness | 10–100 nm | — |
Thickness | 50–300 nm | — |
Thickness | 50–200 nm | — |
Thickness | 50–100 nm | — |
Thickness | 100–300 nm | — |
Thickness | 10–40 nm | — |
Thickness | 15–50 nm | — |
Thickness | 1–30 nm | — |
Thickness | 15–100 nm | — |
Thickness | 15–50000000 nm | — |
Thickness | 100–50000000 nm | — |
Thickness | 500–50000000 nm | — |
Thickness | 1000000–50000000 nm | — |
Thickness | 15–10000000 nm | — |
Thickness | 500–10000000 nm | — |
Thickness | 1–5 cm | — |
Thickness | 1000000–10000000 nm | — |
Thickness | 5000000–30000000 nm | — |
Thickness | 350–750 nm | — |
Thickness | 200–800 nm | — |
Thickness | 220–350 nm | — |
Temperature | 600–800 °C | — |
Thickness | 5–200 nm | — |
Thickness | 1–20 nm | — |
Thickness | 1–10 nm | — |
Thickness | ≤ 1 nm | — |
Thickness | ≤ 10 nm | — |
Thickness | ≥ 1 nm | — |
Thickness | ≥ 300 nm | — |
Thickness | ≥ 1 cm | — |
Temperature | ≥ 1 °C | — |
Temperature | ≥ 800 °C | — |
Temperature | ≥ 900 °C | — |
graphene platelets
metallic nanoparticles
polymer microspheres
atomic layers of graphene
electrically insulating material
| — |
Thickness | 15–30 nm | — |
Thickness | 1–200 nm | — |
Thickness | 1–150 nm | — |
Thickness | 5–100 nm | — |
Thickness | 5–75 nm | — |
Thickness | 15–60 nm | — |
Thickness | 20–30 nm | — |
Thickness | 45–55 nm | — |
Thickness | 1–300 nm | — |
Thickness | 1–100 nm | — |
Thickness | 10–300 nm | — |
Thickness | 10–200 nm | — |
Thickness | 10–100 nm | — |
Thickness | 50–300 nm | — |
Thickness | 50–200 nm | — |
Thickness | 50–100 nm | — |
Thickness | 100–300 nm | — |
Thickness | 10–40 nm | — |
Thickness | 15–50 nm | — |
Thickness | 1–30 nm | — |
Thickness | 15–100 nm | — |
Thickness | 15–50000000 nm | — |
Thickness | 100–50000000 nm | — |
Thickness | 500–50000000 nm | — |
Thickness | 1000000–50000000 nm | — |
Thickness | 15–10000000 nm | — |
Thickness | 500–10000000 nm | — |
Thickness | 1–5 cm | — |
Thickness | 1000000–10000000 nm | — |
Thickness | 5000000–30000000 nm | — |
Thickness | 350–750 nm | — |
Thickness | 200–800 nm | — |
Thickness | 220–350 nm | — |
Temperature | 600–800 °C | — |
Thickness | 5–200 nm | — |
Thickness | 1–20 nm | — |
Thickness | 1–10 nm | — |
Thickness | ≤ 1 nm | — |
Thickness | ≤ 10 nm | — |
Thickness | ≥ 1 nm | — |
Thickness | ≥ 300 nm | — |
Thickness | ≥ 1 cm | — |
Temperature | ≥ 1 °C | — |
Temperature | ≥ 800 °C | — |
Temperature | ≥ 900 °C | — |
graphene platelets
metallic nanoparticles
polymer microspheres
atomic layers of graphene
electrically insulating material
| — |
Thickness | 15–30 nm | — |
Thickness | 1–200 nm | — |
Thickness | 1–150 nm | — |
Thickness | 5–100 nm | — |
Thickness | 5–75 nm | — |
Thickness | 15–60 nm | — |
Thickness | 20–30 nm | — |
Thickness | 45–55 nm | — |
Thickness | 1–300 nm | — |
Thickness | 1–100 nm | — |
Thickness | 10–300 nm | — |
Thickness | 10–200 nm | — |
Thickness | 10–100 nm | — |
Thickness | 50–300 nm | — |
Thickness | 50–200 nm | — |
Thickness | 50–100 nm | — |
Thickness | 100–300 nm | — |
Thickness | 10–40 nm | — |
Thickness | 15–50 nm | — |
Thickness | 1–30 nm | — |
Thickness | 15–100 nm | — |
Thickness | 15–50000000 nm | — |
Thickness | 100–50000000 nm | — |
Thickness | 500–50000000 nm | — |
Thickness | 1000000–50000000 nm | — |
Thickness | 15–10000000 nm | — |
Thickness | 500–10000000 nm | — |
Thickness | 1–5 cm | — |
Thickness | 1000000–10000000 nm | — |
Thickness | 5000000–30000000 nm | — |
Thickness | 350–750 nm | — |
Thickness | 200–800 nm | — |
Thickness | 220–350 nm | — |
Temperature | 600–800 °C | — |
Thickness | 5–200 nm | — |
Thickness | 1–20 nm | — |
Thickness | 1–10 nm | — |
Thickness | ≤ 1 nm | — |
Thickness | ≤ 10 nm | — |
Thickness | ≥ 1 nm | — |
Thickness | ≥ 300 nm | — |
Thickness | ≥ 1 cm | — |
Temperature | ≥ 1 °C | — |
Temperature | ≥ 800 °C | — |
Temperature | ≥ 900 °C | — |
graphene platelets
metallic nanoparticles
polymer microspheres
atomic layers of graphene
electrically insulating material
| — |
Thickness | 15–30 nm | — |
Thickness | 1–200 nm | — |
Thickness | 1–150 nm | — |
Thickness | 5–100 nm | — |
Thickness | 5–75 nm | — |
Thickness | 15–60 nm | — |
Thickness | 20–30 nm | — |
Thickness | 45–55 nm | — |
Thickness | 1–300 nm | — |
Thickness | 1–100 nm | — |
Thickness | 10–300 nm | — |
Thickness | 10–200 nm | — |
Thickness | 10–100 nm | — |
Thickness | 50–300 nm | — |
Thickness | 50–200 nm | — |
Thickness | 50–100 nm | — |
Thickness | 100–300 nm | — |
Thickness | 10–40 nm | — |
Thickness | 15–50 nm | — |
Thickness | 1–30 nm | — |
Thickness | 15–100 nm | — |
Thickness | 15–50000000 nm | — |
Thickness | 100–50000000 nm | — |
Thickness | 500–50000000 nm | — |
Thickness | 1000000–50000000 nm | — |
Thickness | 15–10000000 nm | — |
Thickness | 500–10000000 nm | — |
Thickness | 1–5 cm | — |
Thickness | 1000000–10000000 nm | — |
Thickness | 5000000–30000000 nm | — |
Thickness | 350–750 nm | — |
Thickness | 200–800 nm | — |
Thickness | 220–350 nm | — |
Temperature | 600–800 °C | — |
Thickness | 5–200 nm | — |
Thickness | 1–20 nm | — |
Thickness | 1–10 nm | — |
Thickness | ≤ 1 nm | — |
Thickness | ≤ 10 nm | — |
Thickness | ≥ 1 nm | — |
Thickness | ≥ 300 nm | — |
Thickness | ≥ 1 cm | — |
Temperature | ≥ 1 °C | — |
Temperature | ≥ 800 °C | — |
Temperature | ≥ 900 °C | — |
