Patent
US 11,572,281Patent
Atlas literature
Patent
US 11,572,281Claims define the patent's legal scope. Independent claims stand alone; dependent claims (nested) narrow them. Click a claim to expand its dependents.
Canceled
The method for graphene functionalization and nanoparticles deposition of claim 6 further comprising the steps of dissolving the 1 pyrenecarboxylic acid in methanol and making a 20 mM solution. Currently amended
The method for graphene functionalization and nanoparticles deposition of claim 6 wherein the step of incubating the graphene is for 1 hour if using 1-hydroxypyrene solution or 1 pyrenecarboxylic acid. Currently amended
The method for graphene functionalization and nanoparticles deposition of claim 3 wherein the step of rinsing the graphene uses methanol and isopropyl alcohol and wherein the step of drying the graphene uses nitrogen. Currently amended
The method for graphene functionalization and nanoparticles deposition of claim 6 wherein the step of incubating the graphene is for 6 hours at 190 ° C if using 4-aminomethyl pyridine. Currently amended
A method for graphene functionalization and nanoparticles deposition, comprising: providing graphene; functionalizing the graphene via non-covalent functionalization wherein the step of functionalizing the graphene via non-covalent functionalization comprises the steps of providing one from the group consisting of 1-hydroxypyrene solution, 1 pyrenecarboxylic acid dissolved in methanol, and 4-aminomethyl pyridine; and incubating the graphene; attaching a sequential graphene layer onto the functionalized graphene; rinsing the graphene; drying the graphene; and forming functionalized graphene wherein the functionalized graphene preserves electronic properties, and depositing nanoparticles on the functionalized graphene, wherein the nanoparticles comprise oxide nanoparticles. Currently amended
A method for graphene functionalization and nanoparticles deposition, comprising: providing graphene; functionalizing the graphene via non-covalent functionalization wherein the step of functionalizing the graphene via non-covalent functionalization comprises the steps of providing one from the group consisting of 1-hydroxypyrene solution, 1 pyrenecarboxylic acid dissolved in methanol, and 4-aminomethyl pyridine; and incubating the graphene; attaching a two dimensional material onto the functionalized graphene, wherein the two dimensional material is one selected from the group consisting of, MoS₂-and phosphorene; rinsing the graphene; drying the graphene; and forming functionalized graphene wherein the functionalized graphene preserves electronic properties, and depositing nanoparticles on the functionalized graphene, wherein the nanoparticles comprise oxide nanoparticles. Currently amended
Claims 8-9 Canceled
Canceled
The method for graphene functionalization and nanoparticles deposition of claim [[8]] 6 further comprising the steps of: utilizing a nanoparticle suspension in water; mixing the nanoparticle suspension in water with methanol and forming a working solution; incubating the working solution in pyrene-solution or TFPA-solution and thereby attaching the nanoparticle to the graphene; applying UV to the nanoparticle and the graphene; activating the nanoparticle attachment to the graphene; and rinsing and drying the graphene comprising the attached nanoparticle. Currently amended
The method for graphene functionalization and nanoparticles deposition of claim 10 wherein the step of applying UV to the nanoparticle and the graphene is for about 10-30 minutes. Currently amended
A method for graphene functionalization and nanoparticles deposition, comprising: providing graphene; functionalizing the graphene via covalent functionalization wherein the step of functionalizing the graphene via covalent functionalization comprises the steps of providing one from the group consisting of N-ethylamino-4- azidotetrafluorobenzoate (TFPA-N H 2) in methanol, TFPA-OH, TFPA- COO H, TFPA-SH, TFPA- NH S, and phosporine- ethylamino-4-azidotetrafluorobenzoate (TFPA-P 0 3) in an organic solvent selected from the group consisting of methanol, toluene, and dichloromethane; and incubating the graphene; rinsing the graphene; drying the graphene; and forming functionalized graphene wherein the functionalized graphene preserves electronic properties, and depositing nanoparticles on the functionalized graphene, wherein the nanoparticles comprise oxide nanoparticles. Currently amended
The method for graphene functionalization and nanoparticles deposition of claim 12 further comprising the step of: attaching a sequential graphene layer onto the functionalized graphene. Currently amended
The method for graphene functionalization and nanoparticles deposition of claim 12 further comprising the step of: attaching a two dimensional material onto the functionalized graphene, wherein the two dimensional material is one selected from the group consisting of boron nitride, MoS2, and phosphorene. Currently amended
Canceled
The method for graphene functionalization and nanoparticles deposition of claim 44- 12 further comprising the steps of: utilizing a nanoparticle suspension in water; mixing the nanoparticle suspension in water with methanol and forming a working solution; incubating the working solution in pyrene-solution or TFPA-solution and thereby attaching the nanoparticle to the graphene; applying U V to the nanoparticle and the graphene; activating the nanoparticle attachment to the graphene; and rinsing and drying the graphene comprising the attached nanoparticle. Currently amended
Claims 17-18 Canceled
Canceled
Embodiments described in the patent, grouped by the materials and process steps they use.
5 materials3 process steps
Non-covalent functionalization of graphene via pi-pi stacking using three molecules: 1-hydroxypyrene (as received), 1-pyrenecarboxylic acid dissolved in methanol (20 mM solution, incubated 1 hour), and 4-aminomethyl pyridine (incubated at 190°C for 6 hours).
4 materials1 process step
Covalent functionalization of graphene via azide-based chemistry using TFPA-NH₂ and TFPA-PO3. 4 mL solutions prepared in methanol; graphene chips placed in solutions and exposed to UV light for 10-30 minutes.
Layer stacks claimed or described, ordered top of device to substrate.
non-covalently functionalized graphene with sequential graphene layer and oxide nanoparticles
non-covalently functionalized graphene with 2D material and oxide nanoparticles
Materials described outside the worked examples.
isopropyl alcohol
C₃H₈O
nitrogen
N₂
Performance values and ranges asserted in the specification or claims.
| Property | Value | Material |
|---|---|---|
Temperature | 1.75–400 K | — |
Duration |
Related documents with shared materials, methods, properties, or citations.
Patent
Atlas literature
Patent
US 11,572,281Claims define the patent's legal scope. Independent claims stand alone; dependent claims (nested) narrow them. Click a claim to expand its dependents.
Canceled
The method for graphene functionalization and nanoparticles deposition of claim 6 further comprising the steps of dissolving the 1 pyrenecarboxylic acid in methanol and making a 20 mM solution. Currently amended
The method for graphene functionalization and nanoparticles deposition of claim 6 wherein the step of incubating the graphene is for 1 hour if using 1-hydroxypyrene solution or 1 pyrenecarboxylic acid. Currently amended
The method for graphene functionalization and nanoparticles deposition of claim 3 wherein the step of rinsing the graphene uses methanol and isopropyl alcohol and wherein the step of drying the graphene uses nitrogen. Currently amended
The method for graphene functionalization and nanoparticles deposition of claim 6 wherein the step of incubating the graphene is for 6 hours at 190 ° C if using 4-aminomethyl pyridine. Currently amended
A method for graphene functionalization and nanoparticles deposition, comprising: providing graphene; functionalizing the graphene via non-covalent functionalization wherein the step of functionalizing the graphene via non-covalent functionalization comprises the steps of providing one from the group consisting of 1-hydroxypyrene solution, 1 pyrenecarboxylic acid dissolved in methanol, and 4-aminomethyl pyridine; and incubating the graphene; attaching a sequential graphene layer onto the functionalized graphene; rinsing the graphene; drying the graphene; and forming functionalized graphene wherein the functionalized graphene preserves electronic properties, and depositing nanoparticles on the functionalized graphene, wherein the nanoparticles comprise oxide nanoparticles. Currently amended
A method for graphene functionalization and nanoparticles deposition, comprising: providing graphene; functionalizing the graphene via non-covalent functionalization wherein the step of functionalizing the graphene via non-covalent functionalization comprises the steps of providing one from the group consisting of 1-hydroxypyrene solution, 1 pyrenecarboxylic acid dissolved in methanol, and 4-aminomethyl pyridine; and incubating the graphene; attaching a two dimensional material onto the functionalized graphene, wherein the two dimensional material is one selected from the group consisting of, MoS₂-and phosphorene; rinsing the graphene; drying the graphene; and forming functionalized graphene wherein the functionalized graphene preserves electronic properties, and depositing nanoparticles on the functionalized graphene, wherein the nanoparticles comprise oxide nanoparticles. Currently amended
Claims 8-9 Canceled
Canceled
The method for graphene functionalization and nanoparticles deposition of claim [[8]] 6 further comprising the steps of: utilizing a nanoparticle suspension in water; mixing the nanoparticle suspension in water with methanol and forming a working solution; incubating the working solution in pyrene-solution or TFPA-solution and thereby attaching the nanoparticle to the graphene; applying UV to the nanoparticle and the graphene; activating the nanoparticle attachment to the graphene; and rinsing and drying the graphene comprising the attached nanoparticle. Currently amended
The method for graphene functionalization and nanoparticles deposition of claim 10 wherein the step of applying UV to the nanoparticle and the graphene is for about 10-30 minutes. Currently amended
A method for graphene functionalization and nanoparticles deposition, comprising: providing graphene; functionalizing the graphene via covalent functionalization wherein the step of functionalizing the graphene via covalent functionalization comprises the steps of providing one from the group consisting of N-ethylamino-4- azidotetrafluorobenzoate (TFPA-N H 2) in methanol, TFPA-OH, TFPA- COO H, TFPA-SH, TFPA- NH S, and phosporine- ethylamino-4-azidotetrafluorobenzoate (TFPA-P 0 3) in an organic solvent selected from the group consisting of methanol, toluene, and dichloromethane; and incubating the graphene; rinsing the graphene; drying the graphene; and forming functionalized graphene wherein the functionalized graphene preserves electronic properties, and depositing nanoparticles on the functionalized graphene, wherein the nanoparticles comprise oxide nanoparticles. Currently amended
The method for graphene functionalization and nanoparticles deposition of claim 12 further comprising the step of: attaching a sequential graphene layer onto the functionalized graphene. Currently amended
The method for graphene functionalization and nanoparticles deposition of claim 12 further comprising the step of: attaching a two dimensional material onto the functionalized graphene, wherein the two dimensional material is one selected from the group consisting of boron nitride, MoS2, and phosphorene. Currently amended
Canceled
The method for graphene functionalization and nanoparticles deposition of claim 44- 12 further comprising the steps of: utilizing a nanoparticle suspension in water; mixing the nanoparticle suspension in water with methanol and forming a working solution; incubating the working solution in pyrene-solution or TFPA-solution and thereby attaching the nanoparticle to the graphene; applying U V to the nanoparticle and the graphene; activating the nanoparticle attachment to the graphene; and rinsing and drying the graphene comprising the attached nanoparticle. Currently amended
Claims 17-18 Canceled
Canceled
Embodiments described in the patent, grouped by the materials and process steps they use.
5 materials3 process steps
Non-covalent functionalization of graphene via pi-pi stacking using three molecules: 1-hydroxypyrene (as received), 1-pyrenecarboxylic acid dissolved in methanol (20 mM solution, incubated 1 hour), and 4-aminomethyl pyridine (incubated at 190°C for 6 hours).
4 materials1 process step
Covalent functionalization of graphene via azide-based chemistry using TFPA-NH₂ and TFPA-PO3. 4 mL solutions prepared in methanol; graphene chips placed in solutions and exposed to UV light for 10-30 minutes.
Layer stacks claimed or described, ordered top of device to substrate.
non-covalently functionalized graphene with sequential graphene layer and oxide nanoparticles
non-covalently functionalized graphene with 2D material and oxide nanoparticles
Materials described outside the worked examples.
isopropyl alcohol
C₃H₈O
nitrogen
N₂
Performance values and ranges asserted in the specification or claims.
| Property | Value | Material |
|---|---|---|
Temperature | 1.75–400 K | — |
Duration |
Related documents with shared materials, methods, properties, or citations.
Patent
Atlas literature
Patent
US 11,572,281Claims define the patent's legal scope. Independent claims stand alone; dependent claims (nested) narrow them. Click a claim to expand its dependents.
Canceled
The method for graphene functionalization and nanoparticles deposition of claim 6 further comprising the steps of dissolving the 1 pyrenecarboxylic acid in methanol and making a 20 mM solution. Currently amended
The method for graphene functionalization and nanoparticles deposition of claim 6 wherein the step of incubating the graphene is for 1 hour if using 1-hydroxypyrene solution or 1 pyrenecarboxylic acid. Currently amended
The method for graphene functionalization and nanoparticles deposition of claim 3 wherein the step of rinsing the graphene uses methanol and isopropyl alcohol and wherein the step of drying the graphene uses nitrogen. Currently amended
The method for graphene functionalization and nanoparticles deposition of claim 6 wherein the step of incubating the graphene is for 6 hours at 190 ° C if using 4-aminomethyl pyridine. Currently amended
A method for graphene functionalization and nanoparticles deposition, comprising: providing graphene; functionalizing the graphene via non-covalent functionalization wherein the step of functionalizing the graphene via non-covalent functionalization comprises the steps of providing one from the group consisting of 1-hydroxypyrene solution, 1 pyrenecarboxylic acid dissolved in methanol, and 4-aminomethyl pyridine; and incubating the graphene; attaching a sequential graphene layer onto the functionalized graphene; rinsing the graphene; drying the graphene; and forming functionalized graphene wherein the functionalized graphene preserves electronic properties, and depositing nanoparticles on the functionalized graphene, wherein the nanoparticles comprise oxide nanoparticles. Currently amended
A method for graphene functionalization and nanoparticles deposition, comprising: providing graphene; functionalizing the graphene via non-covalent functionalization wherein the step of functionalizing the graphene via non-covalent functionalization comprises the steps of providing one from the group consisting of 1-hydroxypyrene solution, 1 pyrenecarboxylic acid dissolved in methanol, and 4-aminomethyl pyridine; and incubating the graphene; attaching a two dimensional material onto the functionalized graphene, wherein the two dimensional material is one selected from the group consisting of, MoS₂-and phosphorene; rinsing the graphene; drying the graphene; and forming functionalized graphene wherein the functionalized graphene preserves electronic properties, and depositing nanoparticles on the functionalized graphene, wherein the nanoparticles comprise oxide nanoparticles. Currently amended
Claims 8-9 Canceled
Canceled
The method for graphene functionalization and nanoparticles deposition of claim [[8]] 6 further comprising the steps of: utilizing a nanoparticle suspension in water; mixing the nanoparticle suspension in water with methanol and forming a working solution; incubating the working solution in pyrene-solution or TFPA-solution and thereby attaching the nanoparticle to the graphene; applying UV to the nanoparticle and the graphene; activating the nanoparticle attachment to the graphene; and rinsing and drying the graphene comprising the attached nanoparticle. Currently amended
The method for graphene functionalization and nanoparticles deposition of claim 10 wherein the step of applying UV to the nanoparticle and the graphene is for about 10-30 minutes. Currently amended
A method for graphene functionalization and nanoparticles deposition, comprising: providing graphene; functionalizing the graphene via covalent functionalization wherein the step of functionalizing the graphene via covalent functionalization comprises the steps of providing one from the group consisting of N-ethylamino-4- azidotetrafluorobenzoate (TFPA-N H 2) in methanol, TFPA-OH, TFPA- COO H, TFPA-SH, TFPA- NH S, and phosporine- ethylamino-4-azidotetrafluorobenzoate (TFPA-P 0 3) in an organic solvent selected from the group consisting of methanol, toluene, and dichloromethane; and incubating the graphene; rinsing the graphene; drying the graphene; and forming functionalized graphene wherein the functionalized graphene preserves electronic properties, and depositing nanoparticles on the functionalized graphene, wherein the nanoparticles comprise oxide nanoparticles. Currently amended
The method for graphene functionalization and nanoparticles deposition of claim 12 further comprising the step of: attaching a sequential graphene layer onto the functionalized graphene. Currently amended
The method for graphene functionalization and nanoparticles deposition of claim 12 further comprising the step of: attaching a two dimensional material onto the functionalized graphene, wherein the two dimensional material is one selected from the group consisting of boron nitride, MoS2, and phosphorene. Currently amended
Canceled
The method for graphene functionalization and nanoparticles deposition of claim 44- 12 further comprising the steps of: utilizing a nanoparticle suspension in water; mixing the nanoparticle suspension in water with methanol and forming a working solution; incubating the working solution in pyrene-solution or TFPA-solution and thereby attaching the nanoparticle to the graphene; applying U V to the nanoparticle and the graphene; activating the nanoparticle attachment to the graphene; and rinsing and drying the graphene comprising the attached nanoparticle. Currently amended
Claims 17-18 Canceled
Canceled
Embodiments described in the patent, grouped by the materials and process steps they use.
5 materials3 process steps
Non-covalent functionalization of graphene via pi-pi stacking using three molecules: 1-hydroxypyrene (as received), 1-pyrenecarboxylic acid dissolved in methanol (20 mM solution, incubated 1 hour), and 4-aminomethyl pyridine (incubated at 190°C for 6 hours).
4 materials1 process step
Covalent functionalization of graphene via azide-based chemistry using TFPA-NH₂ and TFPA-PO3. 4 mL solutions prepared in methanol; graphene chips placed in solutions and exposed to UV light for 10-30 minutes.
Layer stacks claimed or described, ordered top of device to substrate.
non-covalently functionalized graphene with sequential graphene layer and oxide nanoparticles
non-covalently functionalized graphene with 2D material and oxide nanoparticles
Materials described outside the worked examples.
isopropyl alcohol
C₃H₈O
nitrogen
N₂
Performance values and ranges asserted in the specification or claims.
| Property | Value | Material |
|---|---|---|
Temperature | 1.75–400 K | — |
Duration |
Related documents with shared materials, methods, properties, or citations.
Patent
Atlas literature
Patent
US 11,572,281Claims define the patent's legal scope. Independent claims stand alone; dependent claims (nested) narrow them. Click a claim to expand its dependents.
Canceled
The method for graphene functionalization and nanoparticles deposition of claim 6 further comprising the steps of dissolving the 1 pyrenecarboxylic acid in methanol and making a 20 mM solution. Currently amended
The method for graphene functionalization and nanoparticles deposition of claim 6 wherein the step of incubating the graphene is for 1 hour if using 1-hydroxypyrene solution or 1 pyrenecarboxylic acid. Currently amended
The method for graphene functionalization and nanoparticles deposition of claim 3 wherein the step of rinsing the graphene uses methanol and isopropyl alcohol and wherein the step of drying the graphene uses nitrogen. Currently amended
The method for graphene functionalization and nanoparticles deposition of claim 6 wherein the step of incubating the graphene is for 6 hours at 190 ° C if using 4-aminomethyl pyridine. Currently amended
A method for graphene functionalization and nanoparticles deposition, comprising: providing graphene; functionalizing the graphene via non-covalent functionalization wherein the step of functionalizing the graphene via non-covalent functionalization comprises the steps of providing one from the group consisting of 1-hydroxypyrene solution, 1 pyrenecarboxylic acid dissolved in methanol, and 4-aminomethyl pyridine; and incubating the graphene; attaching a sequential graphene layer onto the functionalized graphene; rinsing the graphene; drying the graphene; and forming functionalized graphene wherein the functionalized graphene preserves electronic properties, and depositing nanoparticles on the functionalized graphene, wherein the nanoparticles comprise oxide nanoparticles. Currently amended
A method for graphene functionalization and nanoparticles deposition, comprising: providing graphene; functionalizing the graphene via non-covalent functionalization wherein the step of functionalizing the graphene via non-covalent functionalization comprises the steps of providing one from the group consisting of 1-hydroxypyrene solution, 1 pyrenecarboxylic acid dissolved in methanol, and 4-aminomethyl pyridine; and incubating the graphene; attaching a two dimensional material onto the functionalized graphene, wherein the two dimensional material is one selected from the group consisting of, MoS₂-and phosphorene; rinsing the graphene; drying the graphene; and forming functionalized graphene wherein the functionalized graphene preserves electronic properties, and depositing nanoparticles on the functionalized graphene, wherein the nanoparticles comprise oxide nanoparticles. Currently amended
Claims 8-9 Canceled
Canceled
The method for graphene functionalization and nanoparticles deposition of claim [[8]] 6 further comprising the steps of: utilizing a nanoparticle suspension in water; mixing the nanoparticle suspension in water with methanol and forming a working solution; incubating the working solution in pyrene-solution or TFPA-solution and thereby attaching the nanoparticle to the graphene; applying UV to the nanoparticle and the graphene; activating the nanoparticle attachment to the graphene; and rinsing and drying the graphene comprising the attached nanoparticle. Currently amended
The method for graphene functionalization and nanoparticles deposition of claim 10 wherein the step of applying UV to the nanoparticle and the graphene is for about 10-30 minutes. Currently amended
A method for graphene functionalization and nanoparticles deposition, comprising: providing graphene; functionalizing the graphene via covalent functionalization wherein the step of functionalizing the graphene via covalent functionalization comprises the steps of providing one from the group consisting of N-ethylamino-4- azidotetrafluorobenzoate (TFPA-N H 2) in methanol, TFPA-OH, TFPA- COO H, TFPA-SH, TFPA- NH S, and phosporine- ethylamino-4-azidotetrafluorobenzoate (TFPA-P 0 3) in an organic solvent selected from the group consisting of methanol, toluene, and dichloromethane; and incubating the graphene; rinsing the graphene; drying the graphene; and forming functionalized graphene wherein the functionalized graphene preserves electronic properties, and depositing nanoparticles on the functionalized graphene, wherein the nanoparticles comprise oxide nanoparticles. Currently amended
The method for graphene functionalization and nanoparticles deposition of claim 12 further comprising the step of: attaching a sequential graphene layer onto the functionalized graphene. Currently amended
The method for graphene functionalization and nanoparticles deposition of claim 12 further comprising the step of: attaching a two dimensional material onto the functionalized graphene, wherein the two dimensional material is one selected from the group consisting of boron nitride, MoS2, and phosphorene. Currently amended
Canceled
The method for graphene functionalization and nanoparticles deposition of claim 44- 12 further comprising the steps of: utilizing a nanoparticle suspension in water; mixing the nanoparticle suspension in water with methanol and forming a working solution; incubating the working solution in pyrene-solution or TFPA-solution and thereby attaching the nanoparticle to the graphene; applying U V to the nanoparticle and the graphene; activating the nanoparticle attachment to the graphene; and rinsing and drying the graphene comprising the attached nanoparticle. Currently amended
Claims 17-18 Canceled
Canceled
Embodiments described in the patent, grouped by the materials and process steps they use.
5 materials3 process steps
Non-covalent functionalization of graphene via pi-pi stacking using three molecules: 1-hydroxypyrene (as received), 1-pyrenecarboxylic acid dissolved in methanol (20 mM solution, incubated 1 hour), and 4-aminomethyl pyridine (incubated at 190°C for 6 hours).
4 materials1 process step
Covalent functionalization of graphene via azide-based chemistry using TFPA-NH₂ and TFPA-PO3. 4 mL solutions prepared in methanol; graphene chips placed in solutions and exposed to UV light for 10-30 minutes.
Layer stacks claimed or described, ordered top of device to substrate.
non-covalently functionalized graphene with sequential graphene layer and oxide nanoparticles
non-covalently functionalized graphene with 2D material and oxide nanoparticles
Materials described outside the worked examples.
isopropyl alcohol
C₃H₈O
nitrogen
N₂
Performance values and ranges asserted in the specification or claims.
| Property | Value | Material |
|---|---|---|
Temperature | 1.75–400 K | — |
Duration |
Related documents with shared materials, methods, properties, or citations.
covalently functionalized graphene with oxide nanoparticles
oxide nanoparticles
MoS₂
phosphorene
pyrene-solution
TFPA-solution
TFPA-OH
TFPA-COOH
TFPA-SH
TFPA-NHS
toluene
C₇H₈
dichloromethane
CH₂Cl₂
functionalized graphene (covalent)
boron nitride
BN
ZnO nanoparticles
ZnO
epitaxial graphene on SiC
| — |
Temperature | 300-1.75 K | — |
Temperature | 1.75–300 K | — |
Pressure | 0.00001 Torr | — |
Thickness | 50–80 nm | — |
Pressure | 3–4 pa | — |
Pressure | ≤ 0.00001 Torr | — |
covalently functionalized graphene with oxide nanoparticles
oxide nanoparticles
MoS₂
phosphorene
pyrene-solution
TFPA-solution
TFPA-OH
TFPA-COOH
TFPA-SH
TFPA-NHS
toluene
C₇H₈
dichloromethane
CH₂Cl₂
functionalized graphene (covalent)
boron nitride
BN
ZnO nanoparticles
ZnO
epitaxial graphene on SiC
| — |
Temperature | 300-1.75 K | — |
Temperature | 1.75–300 K | — |
Pressure | 0.00001 Torr | — |
Thickness | 50–80 nm | — |
Pressure | 3–4 pa | — |
Pressure | ≤ 0.00001 Torr | — |
covalently functionalized graphene with oxide nanoparticles
oxide nanoparticles
MoS₂
phosphorene
pyrene-solution
TFPA-solution
TFPA-OH
TFPA-COOH
TFPA-SH
TFPA-NHS
toluene
C₇H₈
dichloromethane
CH₂Cl₂
functionalized graphene (covalent)
boron nitride
BN
ZnO nanoparticles
ZnO
epitaxial graphene on SiC
| — |
Temperature | 300-1.75 K | — |
Temperature | 1.75–300 K | — |
Pressure | 0.00001 Torr | — |
Thickness | 50–80 nm | — |
Pressure | 3–4 pa | — |
Pressure | ≤ 0.00001 Torr | — |
covalently functionalized graphene with oxide nanoparticles
oxide nanoparticles
MoS₂
phosphorene
pyrene-solution
TFPA-solution
TFPA-OH
TFPA-COOH
TFPA-SH
TFPA-NHS
toluene
C₇H₈
dichloromethane
CH₂Cl₂
functionalized graphene (covalent)
boron nitride
BN
ZnO nanoparticles
ZnO
epitaxial graphene on SiC
| — |
Temperature | 300-1.75 K | — |
Temperature | 1.75–300 K | — |
Pressure | 0.00001 Torr | — |
Thickness | 50–80 nm | — |
Pressure | 3–4 pa | — |
Pressure | ≤ 0.00001 Torr | — |
