An Overview on Graphene-Metal Oxide Semiconductor Nanocomposite: A Promising Platform for Visible Light Photocatalytic Activity for the Treatment of Various Pollutants in Aqueous Medium
Abstract
:1. Introduction
2. Photocatalysis
2.1. Earth-Abundant Metal Oxide-GO/rGO Composites
2.1.1. rGO-WO3 Composites
2.1.2. rGO-Co3O4 Composites
2.1.3. GO/rGO-TiO2 Composites
2.1.4. GO/rGO-ZnO Composite
2.2. Bimetal Oxide-GO/rGO Composites
2.2.1. GO/rGO-CoFe2O4 Composite
2.2.2. GO-rGO-ZnFe2O4 Composite
2.2.3. GO/rGO-NiFe2O4 and MnFe2O4 Composites
2.2.4. Other Composite Systems
3. Photocatalytic Evaluation
4. Perspectives and Challenges
Author Contributions
Funding
Conflicts of Interest
References
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Order | Photocatalyst | Preparation | References |
---|---|---|---|
A. Hydrothermal method for the synthesis of GO/rGO-NCs photocatalyst | |||
1 | rGO-WO3 | Na2WO4·2H2O and 0.05 g NaCl were dissolved in the above dispersion and kept stirring for 1 h. The pH was adjusted to 2 by using HCl solution. | [6] |
2 | rGO-WO3 | Preset amounts of Na2WO4·2H2O (100, 200, and 400 mg, respectively) were dissolved in 10 mL above GO suspension. 5 mL 35% HCl was added slowly. Transferred to autoclave heated at 140 °C for 8 h. | [18] |
3 | rGO_Co3O4 | GO dispersed into 24 mL of alcohol, sonicating for 60 min in an ultrasonic cleaner. Then, 0.2 M of Co(Ac)2 was added to the mixture followed by 1.2 mL of water, and continued to be stirred for 10 h at a temperature of 80 °C. The resulting solution was then transferred into a 40 mL autoclave for hydrothermal reaction at 150 °C for 3 h. | [21] |
4 | rGO_Co3O4 | GO dispersed in the Co (C2H3O2)2·4H2O. 10 mL with 28% ammonia solution were added to solution, and transferred into an autoclave for hydrothermal action at 180 °C for 12 h. | [23] |
5 | rGO/ZnFe2O4-Ag | The composite was synthesized by the co-precipitation of Zn (NO3)2·6H2O, Fe (NO3)3.9H2O, and AgNO3 in the presence of the GO powder. | [53] |
6 | GO-NiFe2O4 | GO in NiFe2O4 was dispersed in deionized water. Then, NiSO4H2O and FeCl36H2O (0.02 mol) were dissolved in 15 mL water. Transferred into autoclave and kept under high pressure. | [56] |
7 | GO-MnFe2O4 | GO and 60 mL of ethanol with sonication for 1 h and Mn(NO3)2 solution and Fe (NO3)3 9H2O were dissolved. The resulting mixture was transferred into a 100 mL Teflon-lined stainless-steel autoclave and heated to 180 °C for 20 h under autogenous pressure. | [58] |
8 | rGO-Bi2WO6 | GO by using Hammer method GO was reduced by ethylene glycol. Bi(NO3)3 5H2O was dispersed into 5 mL of 4 M nitric acid solution. Na2WO4 2H2O was dissolved in 5 mL of de-ionized water and then Na2WO4 was added dropwise to the solution. | [59] |
B. Sol-gel method for the synthesis of GO/rGO-NCs photocatalysts | |||
9 | rGO-TiO2 | An aqueous solution of Ti(OH)4 was added into an aqueous suspension of GO. | [30] |
10 | rGO-ZnO | An aqueous solution of Zn (AcO)2·3H2O was added into an aqueous suspension of GO. | [39] |
C. Solvothermal technique for the GO/rGO-NCs photocatalysts | |||
11 | GO/CoFe2O4/CdS | Gr–CoFe2O4 nanohybrids were sonicated in 60 mL of ethylene glycol for 10 min. The cadmium source containing 0.1431 g of Cd(NO3)24H2O and10 mL of ethylene glycol was added to the mixture containing Gr–CoFe2O4 nanohybrids. The mixture of 0.0348 g of thiourea, 0.0514 g of PVP, and 10 mL of ethyleneglycol was transferred into the above mixture. | [44] |
12 | rGO-ZnFe2O4 | GO dispersed in ZnOx(OH)y and FeOx solutions were put into a 50 mL autoclave. | [51] |
D. Colloidal method for the synthesis of GO/rGO-NCs photocatalyst | |||
13 | rGO-ZnFe2O4 | C2H6O2 solution is containing 2M FeCl36H2O, and 1M ZnCl2 was gradually added. Then, 1MCH3COONa was introduced into the solution and magnetically stirred for 1 h. Then, transferred to autoclave heated at 1800 °C. | [54] |
E. Thermal treatment for the synthesis of GO/rGO-NCs photocatalyst | |||
14 | rGO-WO3 | Na2WO4·2H2O was dissolved in 30 mL water. Then, nitric acid was added to the solution drop by drop until the precipitate was formed. Dried at 160 °C for 2 h and annealed at 500 °C for 5 h. | [19] |
15 | rGO-WO3 | Na2WO4·2H2O (0.5 g), H2C2O4 (1 g), and Na2SO4 (4 g) were added into subsequent solution and stirred for 3 h. The pH of the solution was maintained at 1.5 by adding 3M HCl and stirring was continued for 3 h. Then, transferred to autoclave maintained at 180 °C for 24 h. | [20] |
16 | FGS/ZnO | GO, Zn(NH3)4CO3, and poly(vinyl pyrrolidone) as an intermediate to combine zinc with carbon material | [36] |
F. Ball-milling method for the synthesis of GO/rGO-NCs photocatalyst | |||
17 | rGO-CoFe2O4 | Co (NO3)2·6H2O and of Fe (NO3)3·9H2O were added to GO (2.5 wt%). The pH is maintained 10 | [45] |
18 | rGO-CoFe2O4 | [45] | |
19 | rGO-CoFe2O4 | [45] | |
G. Liquid phase deposition method for the synthesis of GO/rGO-NCs photocatalyst | |||
20 | rGO-TiO2 | TiO2 powder (P25, Degussa) was dispersed in deionized water and subsequently added to the graphene oxide solution | [28] |
H. Microwave irradiation method for the synthesis of GO/rGO-NCs photocatalyst | |||
21 | rGO-CoFe2O4 | (Co(NO3)2·6H2O and Fe(NO3)3 9H2O and glucose as oxidizer and fuel. GO, nitrates, and glucose were added in water for 30 min ultrasonic treatment. | [43] |
22 | rGO-CoFe2O4 | [43] | |
23 | rGO-CoFe2O4 | [43] | |
24 | rGO/CoFe2O4/Ag | GO, AgNO3, and CoFe2O4 were dissolved in deionized water and stirred for 2 h. Then, solution was further stirred for 2 h under the UV irradiation of a 22 W low-pressure mercury lamp. The product is washed with distilled water and ethanol in an oven at 60 °C for 12 h. | [49] |
I. In situ co-precipitation method for the synthesis of GO/rGO-NCs photocatalyst | |||
25 | rGO-ZnO | GO dispersed in aqueous solution containing Zn(CH3COO)2, DMSO, and H2O | [40] |
J. Annealing NH3 atmosphere method for the synthesis of GO/rGO-NCs photocatalyst | |||
26 | rGO/N-TiO2 | GO and 300 mg of P90 TiO2 was added and stirred for 3 h. GO and P90 TiO2 and a few drops of tetrabutyltitanate were added. | [31] |
Order | Pollutants | Photocatalyst | Light Source | Reactor | Mass of Catalyst (mg) | Concentration (ppm) | Irradiation Time (min) | Conversion (%) | Mol. Wt. | Photon Flux (mW cm−2) | Quantum Yield (%) | Reference |
---|---|---|---|---|---|---|---|---|---|---|---|---|
A. Photocatalytic performances of GO-rGO semiconductor composites for dye degradation | ||||||||||||
A-1. MB | ||||||||||||
1 | MB | rGO-WO3 | light source was a 150 W xenon lamp. | 20 °C self-made Lab Solar gas photocatalysis system with external light irradiation | 50 | 7 | 120 | 100 | 2278.4 | NA | NA | [6] |
2 | MB | rGO-WO3 | One 300 W PLS-SXE 300 xenon lamp | equipped with a λ < 400 nm cut-off filter | 20 | 10 | 70 | 95 | 2247.4 | NA | NA | [20] |
3 | MB | rGO/N-TiO2 | Two 20 W black-lights with 352 nm (UV) and 545 nm (Visible) | NA | 10 | 8.8 | 60 | 80 (UV) and 95 (Visible) | 2123.6 | NA | NA | [28] |
4 | MB | rGO/N-TiO2 | one 500 W Xenon lamp > 400 nm | Quartz cell | 50 | 8.8 | 160 | 100 | 2137.6 | NA | NA | [31] |
5 | MB | rGO-ZnO | one 300 W Xe lamp with 420 nm | NA | 80 | 18 | 70 | 100 | 2125.2 | NA | NA | [39] |
6 | MB | rGO-ZnO | one 500 W mercury lamp | NA | 20 | 10 | 90 | 100 | 2125.2 | NA | NA | [40] |
7 | MB | GO/CoFe2O4/CdS | one 40 W daylight lamp | NA | 25 | 20 | 180 | 100 | 2422.8 | NA | NA | [44] |
8 | MB | rGO-CoFe2O4 | one 800 W Xe lamp | NA | 10 | 20 | 180 | 100 | 2278.4 | NA | NA | [45] |
9 | MB | rGO-CoFe2O4 | A 100 W reading lamp | installed glass cut-off filter | 25 | 10 | 75 | 90 | 2278.4 | NA | NA | [46] |
10 | MB | rGO-ZnFe2O4 | one 500 W xenon lamp > 420 nm | Glass reactor (100 mL) | 50 | 10 | 90 | 61 | 2284.7 | NA | NA | [51] |
11 | MB | rGO-ZnFe2O4 | one 530 W lamp with >400 nm | Pyrex glass tube (100 mL) | 25 | 10 | 120 | 100 | 2284.7 | NA | NA | [54] |
12 | MB | NiFe2O4-GO | One 300 W UV-visible lamp | Quartz glass (100 mL) | 100 | 20 | 600 | 90 | 2280.2 | NA | NA | [56] |
13 | MB | MnFe2O4-GO | one 500 W mercury and xenon lamp | Glass tube (100 mL) | 25 | 20 | 360 | 98 | 2274 | NA | NA | [58] |
A-2. MO | ||||||||||||
14 | MO | rGO_Co3O4 | One 100 W Xenon lamp | NA | 10 | 30 | 180 | 80 | 2287 | NA | NA | [21] |
15 | MO | rGO-TiO2 | one 150 W medium-pressure mercury vapor lamp with >350 nm | quartz cylindrical reactor (7.5 mL) | 100 | 500 | 30 | 100 | 2123.6 | 6 | NA | [30] |
16 | MO | rGO-CoFe2O4 | one 800 W Xe lamp | NA | 10 | 20 | 180 | 25 | 2278.4 | NA | NA | [45] |
17 | MO | rGO-CoFe2O4 | A 100 W reading lamp | installed glass cut-off filter | 25 | 10 | 75 | 60 | 2278.4 | NA | NA | [46] |
A-3. RhB | ||||||||||||
18 | RhB 6G | FGS/ZnO | Two 100 and 250 W high-pressure mercury lamps with 300 nm | Pyrex glass tube (1000 mL) | 10 | 10 | 100 | 100 | 2125.2 | NA | NA | [36] |
19 | RhB | rGO-CoFe2O4 | one 800 W Xe lamp | NA | 10 | 20 | 180 | 75 | 2278.4 | NA | NA | [45] |
20 | RhB | rGO-CoFe2O4 | A 100 W reading lamp | installed glass cut-off filter | 25 | 10 | 75 | 90 | 2278.4 | NA | NA | [46] |
21 | RhB | rGO-Bi2WO6 | one 500 W Xe lamp with 420 nm | Installed glass cut-off filter to visible-light irradiation glass tube (500 mL) | 100 | 0.355 | 15 | 98 | 2740.8 | NA | NA | [59] |
B. Photocatalytic performances of GO-rGO semiconductor composites for organic pollutants degradation | ||||||||||||
22 | sulfamethoxazole | rGO-WO3 | 200 W Xe arc lamp with specific ranges 420–630 nm | 1.5 AM solar simulator | 10 | 20 | 180 | 100 | 2247 | NA | NA | [18] |
23 | 1-Naphthol | rGO-WO3 | One Xe lamp 570 W | cylindrical Pyrex reactor of 7 cm diameter and 15 cm height | 50 | 150 | 120 | 100 | 2247 | NA | NA | [19] |
24 | Chain chlorinated paraffin’s | RGO/CoFe2O4/Ag | One 500 W xenon lamp with 400 nm | in situ quartz reaction cell | 10 | NA | 720 | 90 | 2386.2 | NA | NA | [49] |
25 | 17 α-ethinylestradiol | rGO/ZnFe2O4-Ag | One 300 W Xe-lamp | NA | 100 | 2 | 240 | 100 | 2382 | NA | NA | [53] |
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Mandal, S.; Mallapur, S.; Reddy, M.; Singh, J.K.; Lee, D.-E.; Park, T. An Overview on Graphene-Metal Oxide Semiconductor Nanocomposite: A Promising Platform for Visible Light Photocatalytic Activity for the Treatment of Various Pollutants in Aqueous Medium. Molecules 2020, 25, 5380. https://doi.org/10.3390/molecules25225380
Mandal S, Mallapur S, Reddy M, Singh JK, Lee D-E, Park T. An Overview on Graphene-Metal Oxide Semiconductor Nanocomposite: A Promising Platform for Visible Light Photocatalytic Activity for the Treatment of Various Pollutants in Aqueous Medium. Molecules. 2020; 25(22):5380. https://doi.org/10.3390/molecules25225380
Chicago/Turabian StyleMandal, Soumen, Srinivas Mallapur, Madhusudana Reddy, Jitendra Kumar Singh, Dong-Eun Lee, and Taejoon Park. 2020. "An Overview on Graphene-Metal Oxide Semiconductor Nanocomposite: A Promising Platform for Visible Light Photocatalytic Activity for the Treatment of Various Pollutants in Aqueous Medium" Molecules 25, no. 22: 5380. https://doi.org/10.3390/molecules25225380
APA StyleMandal, S., Mallapur, S., Reddy, M., Singh, J. K., Lee, D. -E., & Park, T. (2020). An Overview on Graphene-Metal Oxide Semiconductor Nanocomposite: A Promising Platform for Visible Light Photocatalytic Activity for the Treatment of Various Pollutants in Aqueous Medium. Molecules, 25(22), 5380. https://doi.org/10.3390/molecules25225380