The Effect of Electronic and Optical Properties on the Kinetic Photocatalytic Model of Methyl Blue Degradation
Abstract
1. Introduction
2. Results and Discussion
2.1. Scanning Electron Microscopy (SEM) and Transmission Electron Microscopy (TEM) Results
2.2. UV-Vis Diffuse Reflectance Spectroscopy (UV-Vis-DRS), Photoluminescence Spectroscopy (PL) and UV-Vis Spectroscopy (UV-Vis) of AgTiC
2.3. Irradiance and Emission Spectra of the Photoreactors (PhRs)
2.4. Kinetic Photocatalytic Model (KPM)
2.5. Photocatalytic Activity Results for MB Degradation
2.6. Kinetic Photocatalytic Model of Pseudo-First-Order (PFO-KPM)
2.7. Photocatalytic Activity as a Function of the Effective Irradiance
3. Materials and Methods
3.1. Synthesis of the Photocatalyst (AgTiC)
3.2. Physicochemical Characterization of the AgTiC Photocatalyst
3.3. Photocatalytic Test
3.4. Characterization of Photoreactors
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| AgTiC | Photocatalyst of Ag-TiO2 NPs on cotton fabric |
| Concentration of the reactant A in fluid phase | |
| CB | Conduction band |
| Eg | Band gap energy |
| EDS | Energy dispersive X-ray spectroscopy probe |
| I | Irradiance |
| Ie | Effective irradiance |
| Photocatalytic pseudo-first-order kinetic constant | |
| Photocatalytic adsorption–desorption equilibrium constant of reactant A | |
| ka | Adsorption constant of reactant A |
| kd | Desorption constant of reactant A |
| knr | Non-radiative optical constant |
| KPM | Kinetic photocatalytic model |
| ks | Surface reaction constant of reactant A |
| kr | Radiative optical constant |
| LED | Light-emitting diodes |
| LHM | Langmuir-Hinshelwood model |
| LSPR | Localized surface plasmon resonance phenomenon |
| MB | Methylene blue |
| NPs | Nanoparticles |
| PFO-KPM | Kinetic photocatalytic model of pseudo-first-order |
| PhR | Photoreactor |
| PhR-Hg | Photoreactor equipped with Low pressure Hg lamp |
| PhR-T5 | Photoreactor equipped with UV-A type radiation-T5 lamp |
| PhR-I | Photoreactor equipped with Industrial LED luminaire lamp |
| PhR-G | Photoreactor equipped with Greenhouse Full-spectrum LED lamp |
| PhR-B | Photoreactor equipped with Blue-radiation LED lamp |
| PL | Photoluminescence spectroscopy |
| rA | Reaction rate of molecule A |
| ROS | Reactive oxygen species |
| RT | Room temperature |
| SEM | Scanning electron microscopy |
| t | Time |
| TEM | Transmission electron microscopy |
| UV | Ultraviolet radiation |
| UVC | Ultraviolet type-C radiation |
| UVB | Ultraviolet type-B radiation |
| UV-A | Ultraviolet type-A radiation |
| UV-vis-DRS | UV-vis diffuse reflectance spectroscopy |
| UV-vis | UV-vis spectroscopy |
| VB | Valence band |
| Vis | Visible radiation |
| λem | Fluorescence emission wavelength |
| λex | Fluorescence excitation wavelength |
| Occupied surface fraction of the adsorbed reactant A | |
| Photocatalytic quantum yield | |
| φpl | Photoluminescence quantum yield |
| τ | Characteristic degradation time, equal to the inverse of first-order kinetic constant (k) |
| [e−/h+] | Electron and hole photogenerated pair |
| Rate of degradation of reactant A |
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| Irradiance | |||
|---|---|---|---|
| Photoreactor | Photoreactor Configuration | UV (W/m2) | Visible (W/m2) |
| PhR-Hg | 75 V a | 41.1 | 60.2 |
| 90 V a | 50.7 | 73.0 | |
| PhR-T5 | 11.5 cm b | 7.0 | 0.3 |
| 4.5 cm b | 9.0 | 0.5 | |
| 0 cm b | 22.6 | 2.5 | |
| Photoreactor | Equipped Lamp | Energy Source | Power Consumed |
|---|---|---|---|
| PhR-Hg | Low pressure Hg (tubular bulb) (diameter: 5/8 in) (PL-VM-E93-250W) | Hg vapor | 250 W |
| PhR-T5 | UV-A type radiation-T5 (tubular bulb) (diameter: 5/8 in) (Tecnolite) | diodes | 16 W |
| PhR-I | Industrial LED luminaire (LEDs array) | diodes Panel 1: 48 LEDs Panel 2: 48 LEDs | 1.5 V–3.3 V |
| PhR-G | Greenhouse full-spectrum LED (LEDs array) | diodes Panel 1: 126 LEDs Panel 2: 164 LEDs | 60 W 6000 Lm |
| PhR-B | Blue-radiation LED (LEDs array) (M2 photoreactor, MERK) | diodes Panel 1: 4 LEDs | 12 V |
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Alvarez-Amparán, M.A.; Chacon-Argaez, U.; Cedeño-Caero, L. The Effect of Electronic and Optical Properties on the Kinetic Photocatalytic Model of Methyl Blue Degradation. Molecules 2026, 31, 782. https://doi.org/10.3390/molecules31050782
Alvarez-Amparán MA, Chacon-Argaez U, Cedeño-Caero L. The Effect of Electronic and Optical Properties on the Kinetic Photocatalytic Model of Methyl Blue Degradation. Molecules. 2026; 31(5):782. https://doi.org/10.3390/molecules31050782
Chicago/Turabian StyleAlvarez-Amparán, Marco Antonio, Uriel Chacon-Argaez, and Luis Cedeño-Caero. 2026. "The Effect of Electronic and Optical Properties on the Kinetic Photocatalytic Model of Methyl Blue Degradation" Molecules 31, no. 5: 782. https://doi.org/10.3390/molecules31050782
APA StyleAlvarez-Amparán, M. A., Chacon-Argaez, U., & Cedeño-Caero, L. (2026). The Effect of Electronic and Optical Properties on the Kinetic Photocatalytic Model of Methyl Blue Degradation. Molecules, 31(5), 782. https://doi.org/10.3390/molecules31050782

