SUBSTITUTED GRAPHANE MATERIAL WITH THREE-DIMENSIONAL STRUCTURE AND PREPARATION METHOD THEREOF
20210206644 ยท 2021-07-08
Inventors
- Guohua Chen (Xiamen, CN)
- Songlin CHEN (Xiamen, CN)
- Xiaomin ZHAO (Xiamen, CN)
- Danqing CHEN (Xiamen, CN)
- Lengshen HUANG (Xiamen, CN)
- Yajing HUANG (Xiamen, CN)
Cpc classification
B82Y30/00
PERFORMING OPERATIONS; TRANSPORTING
C07D307/52
CHEMISTRY; METALLURGY
B82Y40/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The present disclosure discloses a substituted graphane material with a three-dimensional structure. The substituted graphane material comprises a planar substrate with a plurality of six-membered carbon rings comprising continuous sp.sup.3 hybrids, wherein an organic molecular ring is connected to the planar substrate due to a Diels-Alder (D-A) reaction.
Claims
1. A substituted graphane material with a three-dimensional structure, comprising: a planar substrate with a plurality of six-membered carbon rings comprising continuous sp.sup.3 hybrids, wherein an organic molecular ring is connected to the planar substrate due to a Diels-Alder (D-A) reaction.
2. The substituted graphane material according to claim 1, wherein the organic molecular ring is a ring merely comprising a single organic molecular or a ring comprising a plurality of continuous organic molecules.
3. The substituted graphane material according to claim 1, wherein the organic molecular ring is distributed on a side of a plane, and the planar substrate is disposed on the plane.
4. The substituted graphane material according to claim 1, wherein the organic molecular ring is distributed on two sides of a plane, and the planar substrate is disposed on the plane.
5. A method for preparing the substituted graphane material according to claim 1, comprising: (1) mixing graphene material and conjugated diene, heating in inert gas or nitrogen atmosphere to a temperature at which the conjugated diene is configured to form a reflux, and refluxing and reacting for 6-8 days to obtain a material; and (2) removing impurities of the material with a solvent and drying to remove the solvent such that the substituted graphane material is obtained.
6. The method according to claim 5, wherein the conjugated diene comprises 2-furan methylamine, 2-thienyl methylamine, 2-furan methanol, or 2-thienyl methanol.
7. The method according to claim 5, comprising: preparing graphene oxide, comprising: weighing graphite powder, potassium permanganate, and concentrated sulfuric acid according to a preset ratio; adding the graphite powder and the concentrated sulfuric acid to a container; adding the potassium permanganate into the container in ice bath; maintaining the container in the ice bath for half an hour; maintaining the container at 35 C. for 2 hours and then adding 150 mL distilled water; cooling to room temperature and then adding hydrogen peroxide; filtering by suction; centrifuging with dilute hydrochloric acid and distilled water respectively; and freeze-drying to obtain the graphene oxide.
8. The method according to claim 7, comprising: dissolving the graphene oxide in an ascorbic acid solution, uniformly dispersing, and drying to obtain the graphene material, wherein the graphene material is a reduced graphene oxide.
9. The method according to claim 5, comprising: adding flake graphite and N-methylpyrrolidone into a ball mill tank with zirconia milling balls; planetary ball milling for 48 hours; filtering and washing by distilled water and ethanol respectively; and drying at 80 C. to obtain the graphene material.
10. The method according to claim 6, comprising: preparing graphene oxide, comprising: weighing graphite powder, potassium permanganate, and concentrated sulfuric acid according to a preset ratio; adding the graphite powder and the concentrated sulfuric acid to a container; adding the potassium permanganate into the container in ice bath; maintaining the container in the ice bath for half an hour; maintaining the container at 35 C. for 2 hours and then adding 150 mL distilled water; cooling to room temperature and then adding hydrogen peroxide; filtering by suction; centrifuging with dilute hydrochloric acid and distilled water respectively; and freeze-drying to obtain the graphene oxide.
11. The method according to claim 10, comprising: dissolving the graphene oxide in an ascorbic acid solution, uniformly dispersing, and drying to obtain the graphene material, wherein the graphene material is a reduced graphene oxide.
12. The method according to claim 6, comprising: adding flake graphite and N-methylpyrrolidone into a ball mill tank with zirconia milling balls; planetary ball milling for 48 hours; filtering and washing by distilled water and ethanol respectively; and drying at 80 C. to obtain the graphene material.
13. The method according to claim 5, wherein the solvent comprises at least one of water, toluene, acetone, or chloroform.
14. The method according to claim 5, wherein the inert gas is argon gas.
15. The method according to claim 5, wherein the graphene material is reduced graphene oxide or mechanical stripping graphene.
16. The method according to claim 5, wherein a temperature of the reflux is 80 C.-150 C.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0031] The present disclosure will be further described below in combination with the accompanying drawings and embodiments.
Embodiment 1
[0032] 1. 2 g 8000 mesh graphite powder, 12 g potassium permanganate, and 100 mL concentrated sulfuric acid (i.e., a weight concentration of the concentrated sulfuric acid was 70%-98%) was weighed.
[0033] 2. 2 g graphite powder and 100 mL concentrated sulfuric acid were added into a 500 mL beaker, potassium permanganate was added into the 500 mL beaker in an ice bath to obtain a first solution, the first solution was kept in the ice bath for half an hour and was maintained at 35 C. for 2 hours, 150 mL distilled water was then slowly added into the first solution, and hydrogen peroxide was added into the first solution at room temperature (i.e., a temperature of 25 C.-30 C.).
[0034] 3. The first solution was filtered by suction.
[0035] 4. The first solution was respectively centrifuged with 5% dilute hydrochloric acid and distilled water.
[0036] 5. The first solution was freeze-dried to obtain GO (graphene oxide)
[0037] 6. 0.05 g GO was taken and evenly dispersed in 300 mL deionized water to obtain a second solution by high-frequency ultrasound (i.e., 20 khz-40 kHz), and 15 g VC (ascorbic acid) was taken and dissolved in the second solution.
[0038] 7. The second solution was evenly dispersed and then was put in an oven at 80 C. for 4 hours.
[0039] 8. The second solution was cooled to room temperature, filtered, washed by deionized water until residual material was washed away, and was dried in vacuum (i.e., 0.001 atm-0.1 atm) to obtain RGO (reduced graphene oxides).
[0040] 9. 0.05 g RGO and 4 mL 2-furan methylamine was added into a three-necked flask to obtain a third solution.
[0041] 10. The third solution was placed in oil bath maintained at 80 C. and was stirred by magnet, air in the three-necked flask was replaced by nitrogen (or inert gas, for example, argon gas) at standard atmospheric pressure (i.e., 1 atm), and the third solution was reacted for 7 days.
[0042] 11. 20 mL toluene and 100 mL deionized water were added into the third solution, and the deionized water was removed. 100 mL deionized water was added and removed 3 times to obtain a toluene mixture.
[0043] 12. The toluene mixture was dried (45 C., vacuum pressure (i.e., 0.001 atm-0.1 atm)) for 6 hours and the oven was opened 4 times, and then the toluene mixture was freeze-dried for 48 hours to obtain the sample shown in
Embodiment 2
[0044] 1. 2 g 8000 mesh graphite powder, 12 g potassium permanganate, and 100 mL concentrated sulfuric acid was weighed.
[0045] 2. 2 g graphite powder and 100 mL concentrated sulfuric acid were added into a 500 mL beaker, potassium permanganate was added into the 500 mL beaker in an ice bath to obtain a first solution, the first solution was kept in the ice bath for half an hour and was maintained at 35 C. for 2 hours, 150 mL distilled water was then slowly added into the first solution, and hydrogen peroxide was added into the first solution at room temperature.
[0046] 3. The first solution was filtered by suction.
[0047] 4. The first solution was respectively centrifuged with 5% dilute hydrochloric acid and distilled water.
[0048] 5. The first solution was freeze-dried to obtain GO (graphene oxide)
[0049] 6. 0.05 g GO was taken and evenly dispersed in 300 mL deionized water to obtain a second solution by high-frequency ultrasound, and 15 g VC (ascorbic acid) was taken and dissolved in the second solution.
[0050] 7. The second solution was evenly dispersed and then was put in an oven at 80 C. for 4 hours.
[0051] 8. The second solution was cooled to room temperature, filtered, washed by deionized water until residual material was washed away, and was dried in vacuum to obtain RGO.
[0052] 9. 0.05 g RGO and 4 mL 2-furan methanol was added into a three-necked flask to obtain a third solution.
[0053] 10. The third solution was placed in oil bath maintained at 130 C. and was stirred by magnet, air in the three-necked flask was replaced by nitrogen at standard atmospheric pressure, and the third solution was reacted for 7 days.
[0054] 11. 20 mL toluene and 100 mL deionized water were added into the third solution, and the deionized water was removed. 100 mL deionized water was added and removed 3 times to obtain a toluene mixture.
[0055] 12. The toluene mixture was dried (45 C., vacuum pressure) for 6 hours and the oven was opened 4 times, and then the toluene mixture was freeze-dried for 48 hours to obtain the sample shown in
Embodiment 3
[0056] 1. 2 g 8000 mesh graphite powder, 12 g potassium permanganate, and 100 mL concentrated sulfuric acid was weighed.
[0057] 2. 2 g graphite powder and 100 mL concentrated sulfuric acid were added into a 500 mL beaker, potassium permanganate was added into the 500 mL beaker in an ice bath to obtain a first solution, the first solution was kept in the ice bath for half an hour and was maintained at 35 C. for 2 hours, 150 mL distilled water was then slowly added into the first solution, and hydrogen peroxide was added into the first solution at room temperature.
[0058] 3. The first solution was filtered by suction.
[0059] 4. The first solution was respectively centrifuged with 5% dilute hydrochloric acid and distilled water.
[0060] 5. The first solution was freeze-dried to obtain GO (graphene oxide)
[0061] 6. 0.05 g GO was taken and evenly dispersed in 300 mL deionized water to obtain a second solution by high-frequency ultrasound, and 15 g VC (ascorbic acid) was taken and dissolved in the second solution.
[0062] 7. The second solution was evenly dispersed and then was put in an oven at 80 C. for 4 hours.
[0063] 8. The second solution was cooled to room temperature, filtered, washed by deionized water until residual material was washed away, and was dried in vacuum to obtain RGO.
[0064] 9. 0.05 g RGO and 4 mL 2-thiophene methylamine was added into a three-necked flask to obtain a third solution.
[0065] 10. The third solution was placed in oil bath maintained at 80 C. and was stirred by magnet, air in the three-necked flask was replaced by nitrogen at standard atmospheric pressure, and the third solution was reacted for 7 days.
[0066] 11. 20 mL toluene and 100 mL deionized water were added into the third solution, and the deionized water was removed. 100 mL deionized water was added and removed 3 times to obtain a toluene mixture.
[0067] 12. The toluene mixture was dried (45 C., vacuum pressure) for 6 hours and the oven was opened 4 times, and then the toluene mixture was freeze-dried for 48 hours to obtain the sample shown in
Embodiment 4
[0068] 1. 2 g 8000 mesh graphite powder, 12 g potassium permanganate, and 100 mL concentrated sulfuric acid was weighed.
[0069] 2. 2 g graphite powder and 100 mL concentrated sulfuric acid were added into a 500 mL beaker, potassium permanganate was added into the 500 mL beaker in an ice bath to obtain a first solution, the first solution was kept in the ice bath for half an hour and was maintained at 35 C. for 2 hours, 150 mL distilled water was then slowly added into the first solution, and hydrogen peroxide was added into the first solution at room temperature.
[0070] 3. The first solution was filtered by suction.
[0071] 4. The first solution was respectively centrifuged with 5% dilute hydrochloric acid and distilled water.
[0072] 5. The first solution was freeze-dried to obtain GO (graphene oxide)
[0073] 6. 0.05 g GO was taken and evenly dispersed in 300 mL deionized water to obtain a second solution by high-frequency ultrasound, and 15 g VC (ascorbic acid) was taken and dissolved in the second solution.
[0074] 7. The second solution was evenly dispersed and then was put in an oven at 80 C. for 4 hours.
[0075] 8. The second solution was cooled to room temperature, filtered, washed by deionized water until residual material was washed away, and was dried in vacuum to obtain RGO.
[0076] 9. 0.05 g RGO and 4 mL 2-thiophene methanol was added into a three-necked flask to obtain a third solution.
[0077] 10. The third solution was placed in oil bath maintained at 150 C. and was stirred by magnet, air in the three-necked flask was replaced by nitrogen at standard atmospheric pressure, and the third solution was reacted for 7 days.
[0078] 11. 20 mL toluene and 100 mL deionized water were added into the third solution, and the deionized water was removed. 100 mL deionized water was added and removed 3 times to obtain a toluene mixture.
[0079] 12. The toluene mixture was dried (45 C., vacuum pressure) for 6 hours and the oven was opened 4 times, and then the toluene mixture was freeze-dried for 48 hours to obtain the sample shown in
Embodiment 5
[0080] 1. 0.05 g G2 (industrial graphene) and 4 mL 2-furan methylamine was added into a three-necked flask to obtain a third solution.
[0081] 2. The third solution was placed in oil bath maintained at 80 C. and was stirred by magnet, air in the three-necked flask was replaced by nitrogen at standard atmospheric pressure, and the third solution was reacted for 7 days.
[0082] 3. 20 mL toluene and 100 mL deionized water were added into the third solution, and the deionized water was removed. 100 mL deionized water was added and removed 3 times to obtain a toluene mixture.
[0083] 4. The toluene mixture was dried (45 C., vacuum pressure) for 6 hours and the oven was opened 4 times, and then the toluene mixture was freeze-dried for 48 hours to obtain the sample shown in
Embodiment 6
[0084] 1. 0.05 g G2 (industrial graphene) and 4 mL 2-furan methanol was added into a three-necked flask to obtain a third solution.
[0085] 2. The third solution was placed in oil bath maintained at 130 C. and was stirred by magnet, air in the three-necked flask was replaced by nitrogen at standard atmospheric pressure, and the third solution was reacted for 7 days.
[0086] 3. 20 mL toluene and 100 mL deionized water were added into the third solution, and the deionized water was removed. 100 mL deionized water was added and removed 3 times to obtain a toluene mixture.
[0087] 4. The toluene mixture was dried (45 C., vacuum pressure) for 6 hours and the oven was opened 4 times, and then the toluene mixture was freeze-dried for 48 hours to obtain the sample shown in
Embodiment 7
[0088] 1. 0.05 g G2 (industrial graphene) and 4 mL 2-thiophene methylamine was added into a three-necked flask to obtain a third solution.
[0089] 2. The third solution was placed in oil bath maintained at 80 C. and was stirred by magnet, air in the three-necked flask was replaced by nitrogen at standard atmospheric pressure, and the third solution was reacted for 7 days.
[0090] 3. 20 mL toluene and 100 mL deionized water were added into the third solution, and the deionized water was removed. 100 mL deionized water was added and removed 3 times to obtain a toluene mixture.
[0091] 4. The toluene mixture was dried (45 C., vacuum pressure) for 6 hours and the oven was opened 4 times, and then the toluene mixture was freeze-dried for 48 hours to obtain the sample shown in
Embodiment 8
[0092] 1. 0.05 g G2 (industrial graphene) and 4 mL 2-thiophene methanol was added into a three-necked flask to obtain a third solution.
[0093] 2. The third solution was placed in oil bath maintained at 150 C. and was stirred by magnet, air in the three-necked flask was replaced by nitrogen at standard atmospheric pressure, and the third solution was reacted for 7 days.
[0094] 3. 20 mL toluene and 100 mL deionized water were added into the third solution, and the deionized water was removed. 100 mL deionized water was added and removed 3 times to obtain a toluene mixture.
[0095] 4. The toluene mixture was dried (45 C., vacuum pressure) for 6 hours and the oven was opened 4 times, and then the toluene mixture was freeze-dried for 48 hours to obtain the sample shown in
Embodiment 9
[0096] 1. 0.5 g 8000 mesh flake graphite and 40 mL NMP (N-methylpyrrolidone) were added into a ball mill tank comprising zirconia milling balls and was planetary ball milled for 48 hours to obtain a mixture.
[0097] 2. The mixture was filtered and washed by suction 10 times by distilled water and ethanol and was dried at 80 C. to obtain graphene.
[0098] 3. 0.05 g industrial graphene and 4 mL 2-furan methylamine was added into a three-necked flask to obtain a third solution.
[0099] 4. The third solution was placed in oil bath maintained at 80 C. and was stirred by magnet, air in the three-necked flask was replaced by nitrogen at standard atmospheric pressure, and the third solution was reacted for 7 days.
[0100] 5. 20 mL toluene and 100 mL deionized water were added into the third solution, and the deionized water was removed. 100 mL deionized water was added and removed 3 times to obtain a toluene mixture.
[0101] 6. The toluene mixture was dried (45 C., vacuum pressure) for 6 hours and the oven was opened 4 times, and then the toluene mixture was freeze-dried for 48 hours to obtain the sample shown in
Embodiment 10
[0102] 1. 0.5 g 8000 mesh flake graphite and 40 mL NMP (N-methylpyrrolidone) were added into a ball mill tank comprising zirconia milling balls and was planetary ball milled for 48 hours to obtain a mixture.
[0103] 2. The mixture was filtered and washed by suction 10 times by distilled water and ethanol and was dried at 80 C. to obtain graphene.
[0104] 3. 0.05 g industrial graphene and 4 mL 2-furan methanol was added into a three-necked flask to obtain a third solution.
[0105] 4. The third solution was placed in oil bath maintained at 130 C. and was stirred by magnet, air in the three-necked flask was replaced by nitrogen at standard atmospheric pressure, and the third solution was reacted for 7 days.
[0106] 5. 20 mL toluene and 100 mL deionized water were added into the third solution, and the deionized water was removed. 100 mL deionized water was added and removed 3 times to obtain a toluene mixture.
[0107] 6. The mixture was dried (45 C., vacuum pressure) for 6 hours and the oven was opened 4 times, and then the toluene mixture was freeze-dried for 48 hours to obtain the sample shown in
Embodiment 11
[0108] 1. 0.5 g 8000 mesh flake graphite and 40 mL NMP (N-methylpyrrolidone) were added into a ball mill tank comprising zirconia milling balls and was planetary ball milled for 48 hours to obtain a mixture.
[0109] 2. The mixture was filtered and washed by suction 10 times by distilled water and ethanol and was dried at 80 C. to obtain graphene.
[0110] 3. 0.05 g industrial graphene and 4 mL 2-thiophene methylamine was added into a three-necked flask to obtain a third solution.
[0111] 4. The third solution was placed in oil bath maintained at 80 C. and was stirred by magnet, air in the three-necked flask was replaced by nitrogen at standard atmospheric pressure, and the third solution was reacted for 7 days.
[0112] 5. 20 mL toluene and 100 mL deionized water were added into the third solution, and the deionized water was removed. 100 mL deionized water was added and removed 3 times to obtain a toluene mixture.
[0113] 6. The toluene mixture was dried (45 C., vacuum pressure) for 6 hours and the oven was opened 4 times, and then the toluene mixture was freeze-dried for 48 hours to obtain the sample shown in
Embodiment 12
[0114] 1. 0.5 g 8000 mesh flake graphite and 40 mL NMP (N-methylpyrrolidone) were added into a ball mill tank comprising zirconia milling balls and was planetary ball milled for 48 hours to obtain a mixture.
[0115] 2. The mixture was filtered and washed by suction 10 times by distilled water and ethanol and was dried at 80 C. to obtain graphene.
[0116] 3. 0.05 g industrial graphene and 4 mL 2-thiophene methanol was added into a three-necked flask to obtain a third solution.
[0117] 4. The third solution was placed in oil bath maintained at 150 C. and was stirred by magnet, air in the three-necked flask was replaced by nitrogen at standard atmospheric pressure, and the third solution was reacted for 7 days.
[0118] 5. 20 mL toluene and 100 mL deionized water were added into the third solution, and the deionized water was removed. 100 mL deionized water was added and removed 3 times to obtain toluene mixture.
[0119] 6. The toluene mixture was dried (45 C., vacuum pressure) for 6 hours and the oven was opened 4 times, and then the toluene mixture was freeze-dried for 48 hours to obtain the sample shown in
Embodiment 13
[0120] 1. 2 g 8000 mesh graphite powder, 12 g potassium permanganate, and 100 mL concentrated sulfuric acid was weighed.
[0121] 2. 2 g graphite powder and 100 mL concentrated sulfuric acid were added into a 500 mL beaker, potassium permanganate was added into the 500 mL beaker in an ice bath to obtain a first solution, the first solution was kept in the ice bath for half an hour and was maintained at 35 C. for 2 hours, 150 mL distilled water was then slowly added into the first solution, and hydrogen peroxide was added into the first solution at room temperature.
[0122] 3. The first solution was filtered by suction.
[0123] 4. The first solution was respectively centrifuged with 5% dilute hydrochloric acid and distilled water.
[0124] 5. The first solution was freeze-dried to obtain GO (graphene oxide)
[0125] 6. 0.05 g GO was taken and evenly dispersed in 300 mL deionized water to obtain a second solution by high-frequency ultrasound, and 15 g VC (ascorbic acid) was taken and dissolved in the second solution.
[0126] 7. The second solution was evenly dispersed and then was put in an oven at 80 C. for 4 hours.
[0127] 8. The second solution was cooled to room temperature, filtered, washed by deionized water until residual material was washed away, and was dried in vacuum to obtain RGO.
[0128] 9. 0.05 g RGO and 4 mL 2-furan methylamine was added into a three-necked flask to obtain a third solution.
[0129] 10. The third solution was placed in oil bath maintained at 80 C. and was stirred by magnet, air in the three-necked flask was replaced by nitrogen at standard atmospheric pressure, and the third solution was reacted for 7 days.
[0130] 11. 20 mL acetone and 120 mL deionized water were added into the third solution and the third solution was centrifugated for 0.5 hours to remove liquid of the third solution 3 times. A toluene mixture was obtained.
[0131] 12. The toluene mixture was dried (45 C., vacuum pressure) for 6 hours and the oven was opened 4 times, and then the toluene mixture was freeze-dried for 48 hours to obtain the sample shown in
Embodiment 14
[0132] 1. 2 g 8000 mesh graphite powder, 12 g potassium permanganate, and 100 mL concentrated sulfuric acid was weighed.
[0133] 2. 2 g graphite powder and 100 mL concentrated sulfuric acid were added into a 500 mL beaker, potassium permanganate was added into the 500 mL beaker in an ice bath to obtain a first solution, the first solution was kept in the ice bath for half an hour and was maintained at 35 C. for 2 hours, 150 mL distilled water was then slowly added into the first solution, and hydrogen peroxide was added into the first solution at room temperature.
[0134] 3. The first solution was filtered by suction.
[0135] 4. The first solution was respectively centrifuged with 5% dilute hydrochloric acid and distilled water.
[0136] 5. The first solution was freeze-dried to obtain GO (graphene oxide)
[0137] 6. 0.05 g GO was taken and evenly dispersed in 300 mL deionized water to obtain a second solution by high-frequency ultrasound, and 15 g VC (ascorbic acid) was taken and dissolved in the second solution.
[0138] 7. The second solution was evenly dispersed and then was put in an oven at 80 C. for 4 hours.
[0139] 8. The second solution was cooled to room temperature, filtered, washed by deionized water until residual material was washed away, and was dried in vacuum to obtain RGO.
[0140] 9. 0.05 g RGO and 4 mL 2-furan methanol was added into a three-necked flask to obtain a third solution.
[0141] 10. The third solution was placed in oil bath maintained at 130 C. and was stirred by magnet, air in the three-necked flask was replaced by nitrogen at standard atmospheric pressure, and the third solution was reacted for 7 days.
[0142] 11. 20 mL acetone and 120 mL deionized water were added into the third solution and the third solution was centrifugated for 0.5 hours to remove liquid of the third solution 3 times. A toluene mixture was obtained.
[0143] 12. The toluene mixture was dried (45 C., vacuum pressure) for 6 hours and the oven was opened 4 times, and then the toluene mixture was freeze-dried for 48 hours to obtain the sample shown in
Embodiment 15
[0144] 1. 2 g 8000 mesh graphite powder, 12 g potassium permanganate, and 100 mL concentrated sulfuric acid was weighed.
[0145] 2. 2 g graphite powder and 100 mL concentrated sulfuric acid were added into a 500 mL beaker, potassium permanganate was added into the 500 mL beaker in an ice bath to obtain a first solution, the first solution was kept in the ice bath for half an hour and was maintained at 35 C. for 2 hours, 150 mL distilled water was then slowly added into the first solution, and hydrogen peroxide was added into the first solution at room temperature.
[0146] 3. The first solution was filtered by suction.
[0147] 4. The first solution was respectively centrifuged with 5% dilute hydrochloric acid and distilled water.
[0148] 5. The first solution was freeze-dried to obtain GO (graphene oxide)
[0149] 6. 0.05 g GO was taken and evenly dispersed in 300 mL deionized water to obtain a second solution by high-frequency ultrasound, and 15 g VC (ascorbic acid) was taken and dissolved in the second solution.
[0150] 7. The second solution was evenly dispersed and then was put in an oven at 80 C. for 4 hours.
[0151] 8. The second solution was cooled to room temperature, filtered, washed by deionized water until residual material was washed away, and was dried in vacuum to obtain RGO.
[0152] 9. 0.05 g RGO and 4 mL 2-thiophene methylamine was added into a three-necked flask to obtain a third solution.
[0153] 10. The third solution was placed in oil bath maintained at 80 C. and was stirred by magnet, air in the three-necked flask was replaced by nitrogen at standard atmospheric pressure, and the third solution was reacted for 7 days.
[0154] 11. 20 mL acetone and 120 mL deionized water were added into the third solution and the third solution was centrifugated for 0.5 hours to remove liquid of the third solution 3 times. A toluene mixture was obtained.
[0155] 12. The toluene mixture was dried (45 C., vacuum pressure) for 6 hours and the oven was opened 4 times, and then the toluene mixture was freeze-dried for 48 hours to obtain the sample shown in
Embodiment 16
[0156] 1. 2 g 8000 mesh graphite powder, 12 g potassium permanganate, and 100 mL concentrated sulfuric acid was weighed.
[0157] 2. 2 g graphite powder and 100 mL concentrated sulfuric acid were added into a 500 mL beaker, potassium permanganate was added into the 500 mL beaker in an ice bath to obtain a first solution, the first solution was kept in the ice bath for half an hour and was maintained at 35 C. for 2 hours, 150 mL distilled water was then slowly added into the first solution, and hydrogen peroxide was added into the first solution at room temperature.
[0158] 3. The first solution was filtered by suction.
[0159] 4. The first solution was respectively centrifuged with 5% dilute hydrochloric acid and distilled water.
[0160] 5. The first solution was freeze-dried to obtain GO (graphene oxide)
[0161] 6. 0.05 g GO was taken and evenly dispersed in 300 mL deionized water to obtain a second solution by high-frequency ultrasound, and 15 g VC (ascorbic acid) was taken and dissolved in the second solution.
[0162] 7. The second solution was evenly dispersed and then was put in an oven at 80 C. for 4 hours.
[0163] 8. The second solution was cooled to room temperature, filtered, washed by deionized water until residual material was washed away, and was dried in vacuum to obtain RGO.
[0164] 9. 0.05 g RGO and 4 mL 2-thiophene methanol was added into a three-necked flask to obtain a third solution.
[0165] 10. The third solution was placed in oil bath maintained at 150 C. and was stirred by magnet, air in the three-necked flask was replaced by nitrogen at standard atmospheric pressure, and the third solution was reacted for 7 days.
[0166] 11. 20 mL acetone and 120 mL deionized water were added into the third solution and the third solution was centrifugated for 0.5 hours to remove liquid of the third solution 3 times. A toluene mixture was obtained.
[0167] 12. The toluene mixture was dried (45 C., vacuum pressure) for 6 hours and the oven was opened 4 times, and then the toluene mixture was freeze-dried for 48 hours to obtain the sample shown in
Embodiment 17
[0168] 1. 0.05 g G2 (industrial graphene obtained by a mechanical stripping method, that is, industrial mechanical stripping graphene) and 4 mL 2-furan methylamine was added into a three-necked flask to obtain a third solution.
[0169] 2. The third solution was placed in oil bath maintained at 80 C. and was stirred by magnet, air in the three-necked flask was replaced by nitrogen at standard atmospheric pressure, and the third solution was reacted for 7 days.
[0170] 3. 20 mL acetone and 120 mL deionized water were added into the third solution and the third solution was centrifugated for 0.5 hours to remove liquid of the third solution 3 times. A toluene mixture was obtained.
[0171] 4. The toluene mixture was dried (45 C., vacuum pressure) for 6 hours and the oven was opened 4 times, and then the toluene mixture was freeze-dried for 48 hours to obtain the sample shown in
Embodiment 18
[0172] 1. 0.05 g G2 (industrial graphene obtained by a mechanical stripping method) and 4 mL 2-furan methanol was added into a three-necked flask to obtain a third solution.
[0173] 2. The third solution was placed in oil bath maintained at 130 C. and was stirred by magnet, air in the three-necked flask was replaced by nitrogen at standard atmospheric pressure, and the third solution was reacted for 7 days.
[0174] 3. 20 mL acetone and 120 mL deionized water were added into the third solution and the third solution was centrifugated for 0.5 hours to remove liquid of the third solution 3 times. A toluene mixture was obtained.
[0175] 4. The toluene mixture was dried (45 C., vacuum pressure) for 6 hours and the oven was opened 4 times, and then the toluene mixture was freeze-dried for 48 hours to obtain the sample shown in
Embodiment 19
[0176] 1. 0.05 g G2 (industrial graphene obtained by a mechanical stripping method) and 4 mL 2-thiophene methylamine was added into a three-necked flask to obtain a third solution.
[0177] 2. The third solution was placed in oil bath maintained at 80 C. and was stirred by magnet, air in the three-necked flask was replaced by nitrogen at standard atmospheric pressure, and the third solution was reacted for 7 days.
[0178] 3. 20 mL acetone and 120 mL deionized water were added into the third solution and the third solution was centrifugated for 0.5 hours to remove liquid of the third solution 3 times. A toluene mixture was obtained.
[0179] 4. The toluene mixture was dried (45 C., vacuum pressure) for 6 hours and the oven was opened 4 times, and then the toluene mixture was freeze-dried for 48 hours to obtain the sample shown in
Embodiment 20
[0180] 1. 0.05 g G2 (industrial graphene obtained by a mechanical stripping method) and 4 mL 2-thiophene methanol was added into a three-necked flask to obtain a third solution.
[0181] 2. The third solution was placed in oil bath maintained at 150 C. and was stirred by magnet, air in the three-necked flask was replaced by nitrogen at standard atmospheric pressure, and the third solution was reacted for 7 days.
[0182] 3. 20 mL acetone and 120 mL deionized water were added into the third solution and the third solution was centrifugated for 0.5 hours to remove liquid of the third solution 3 times. A toluene mixture was obtained.
[0183] 4. The toluene mixture was dried (45 C., vacuum pressure) for 6 hours and the oven was opened 4 times, and then the toluene mixture was freeze-dried for 48 hours to obtain the sample shown in
[0184] The specific reaction principles of the embodiments are shown in
[0185] The aforementioned embodiments are merely some embodiments of the present disclosure, and the scope of the disclosure is not limited thereto. Thus, it is intended that the present disclosure cover any modifications and variations of the presently presented embodiments provided they are made without departing from the appended claims and the specification of the present disclosure.