The Facile Microwave-Assisted Coprecipitation Route to Obtain Polyoxoniobate (Na7(H3O)Nb6O19·14H2O) Nanorods Modified with Copper for CO2 Photoreduction
Abstract
:1. Introduction
2. Materials and Methods
2.1. Synthesis of the Polyoxoniobate Pure and Modified with Copper
2.2. Characterization
2.3. Photoreduction Tests
3. Results and Discussion
3.1. Cu-PONs Structural Characterizations
3.2. CO2 Photoreduction
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Conflicts of Interest
References
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Materials | Band Gap (eV) | %Cu * |
---|---|---|
PON-150 °C/30 min | 3.36 | - |
Cu-PON-150 °C/20 min | 2.60 | 6.99 |
Cu-PON-80 °C/30 min | 3.40 | 10.05 |
Cu-PON-100 °C/30 min | 3.30 | 10.65 |
Cu-PON-150 °C/30 min | 3.20 | 11.76 |
Materials | Length Particle Size (µm) * | Width Particle Size (µm) * | Aspect Ratio * |
---|---|---|---|
PON 150 °C/30 min | 7.33 ± 3.49 | 1.74 ± 0.55 | 4.20 |
Cu-PON 150 °C/20 min | 5.43 ± 1.73 | 1.26 ± 0.36 | 4.31 |
Cu-PON 80 °C/30 min | 9.09 ± 4.30 | 1.38 ± 0.43 | 6.58 |
Cu-PON 100 °C/30 min | 6.06 ± 3.00 | 1.22 ± 0.46 | 4.97 |
Cu-PON 150 °C/30 min | 5.04 ± 2.43 | 1.08 ± 0.36 | 4.67 |
Photocatalyst | POM Composition | Medium | Radiation | CO Selectivity | Reference |
---|---|---|---|---|---|
Cu-modified polyoxoniobate | Na7(H3O)Nb6O19·14H2O | High-purity CO2 purged into deionized water | UV-radiation (254 nm) | 92.5% | This work |
Mo-based MOF prepared via POM induction | Zn2Co2(MoO4)(HCO2)3(C4H5N2)3•DMF (Zn/Co/Mo MOF) | Gaseous pure CO2 medium with MeCN solvent, [Ru(bpy)3]Cl2 photosensitizer and TEOA sacrificial agent | Visible light | 91.4% | [29] |
Mo-based MOF prepared via POM induction | Zn4(MoO4)(HCO2)3(C4H5N2)3•DMF (Zn/Mo MOF) | gaseous pure CO2 medium with MeCN solvent, [Ru(bpy)3]Cl2 photosensitizer and TEOA sacrificial agent | Visible light | 72.8% | [29] |
The POM with composition K4Na28[{Co4(O-H)3(VO4)}4(SiW9O34)4] 66H2O | K4Na28[{Co4(O-H)3(VO4)}4(SiW9O34)4] 66H2O | The substrate was CO2 saturated in CH3CN/H2O as solvent. Using TEOA as sacrificial agent and [Ru(phen)3] as photosensitizer | 450 nm LED ligh | 99.6% | [30] |
POM-based host– guest organo–metallophosphate (OMPO) frameworks | [Zn4(PO4)(C7H8N4)6] [BW12O40]•2H2O | High purity CO2 was the substrate. The CH3CN was the solvent. TEOA was the sacrificial agent, and [Ru(bpy)3]Cl2 was the photosensitizer | Visible light | 64.6% | [31] |
POM-based host– guest organo–metallophosphate (OMPO) frameworks | [Co4(PO4)(C7H8N4)6] [BW12O40]•1.5H2O | High purity CO2 was the substrate. The CH3CN was the solvent. TEOA was the sacrificial agent, and [Ru(bpy)3]Cl2 was the photosensitizer | Visible light | 93.4% | [31] |
g-C3N4 modified with POM | Na10Co4(H2O)2(PW9O34)2 | The substrate was pure CO2 purged in a mixture of acetonitrile, triethanolamine, CoCl2, and bipyridine solution | Visible radiation with wavelength > 420 nm | 94% | [32] |
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Souza, J.R.C.; Torres, J.A.; Ribeiro, L.S.; Filho, J.B.G.; Santos, F.L.; Malgioglio, N.; Gorup, L.F.; Pinto, A.H.; Nogueira, A.E. The Facile Microwave-Assisted Coprecipitation Route to Obtain Polyoxoniobate (Na7(H3O)Nb6O19·14H2O) Nanorods Modified with Copper for CO2 Photoreduction. AppliedChem 2023, 3, 320-333. https://doi.org/10.3390/appliedchem3020020
Souza JRC, Torres JA, Ribeiro LS, Filho JBG, Santos FL, Malgioglio N, Gorup LF, Pinto AH, Nogueira AE. The Facile Microwave-Assisted Coprecipitation Route to Obtain Polyoxoniobate (Na7(H3O)Nb6O19·14H2O) Nanorods Modified with Copper for CO2 Photoreduction. AppliedChem. 2023; 3(2):320-333. https://doi.org/10.3390/appliedchem3020020
Chicago/Turabian StyleSouza, Joelma R. C., Juliana A. Torres, Lucas S. Ribeiro, Jose B. G. Filho, Fabiana L. Santos, Nicholas Malgioglio, Luiz Fernando Gorup, Alexandre H. Pinto, and André E. Nogueira. 2023. "The Facile Microwave-Assisted Coprecipitation Route to Obtain Polyoxoniobate (Na7(H3O)Nb6O19·14H2O) Nanorods Modified with Copper for CO2 Photoreduction" AppliedChem 3, no. 2: 320-333. https://doi.org/10.3390/appliedchem3020020
APA StyleSouza, J. R. C., Torres, J. A., Ribeiro, L. S., Filho, J. B. G., Santos, F. L., Malgioglio, N., Gorup, L. F., Pinto, A. H., & Nogueira, A. E. (2023). The Facile Microwave-Assisted Coprecipitation Route to Obtain Polyoxoniobate (Na7(H3O)Nb6O19·14H2O) Nanorods Modified with Copper for CO2 Photoreduction. AppliedChem, 3(2), 320-333. https://doi.org/10.3390/appliedchem3020020