Open Access
Subscription Access
Photocatalytic Degradation of Aqueous Phenanthrene in a Slurry Photocatalytic Reactor:Optimization and Modelling
A photoreactor with 254 nm, 16 W UV lamp was evaluated for phenanthrene (PHE) degradation. The effect of operating variables such as initial PHE concentration (1000–1500 μg/l), catalyst dosage (0.1– 0.9 g/l) and pH (3.0–9.0) on PHE degradation was investigated in detail. The batch study of photocatalytic process showed 83.5% PHE degradation and 60.2% TOC removal for optimized values (PHE concentration – 1000 μg/l, TiO2 dosage – 0.5 g/l and pH – 3.0) during 3 h reaction. The photocatalytic degradation of PHE was found to follow pseudo-first-order kinetics. The results obtained from continuous process revealed that nano TiO2 could be used for industrial applications because of its potential for long-term operations. Response surface methodology (RSM) with Design Expert software was used to analyse the obtained experimental data.
Keywords
Degradation, Kinetic Constants, Mineralization, Photocatalysis, TiO2.
User
Font Size
Information
- Gevao, B., Jones, K. C. and Hamilton, T. J., Polycyclic aromatic hydrocarbon (PAH) deposition in a small rural lake Cumbria, UK. Sci. Total Environ., 1998, 215, 231–242.
- Gao, Y. Z. and Zhu, L. Z., Plant uptake, accumulation and translocation of phenanthrene and pyrene in soil. Chemosphere, 2004, 127(1), 131–139.
- Baek, S., Goldstone, M., Kirk, P., Lester, J. and Perry, R., Phase distribution and particle size dependency of polycyclicaromatic hydrocarbons in the urban atmosphere. Chemosphere, 1991, 22, 503–520.
- NRC (National Research Council), Polycyclic aromatic hydrocarbons: Evaluation of sources and effects. National Academy Press ES/I-ES/7, Washington, DC, 1983.
- Burn, G., Vaidya, O. and Leger, M., Atmospheric deposition of polycyclic aromatic hydrocarbons to Atlantic, Canada: geographic and temporal distributions and trends 1980–2001. Environ. Sci. Technol., 2004, 38, 1941–1948.
- Clemons, J., Allan, C., Marvin, C., Wu, Z., McCarry, B. and Bryant, D., Evidence of estrogen and TCDD-like activities in crude and fractionated extracts of PM 10 air particulate material using in vitro gene expression assays. Environ. Sci. Technol., 2004, 32, 1853–1860.
- Shi, Z. et al., Contamination of rivers in Tianjin, China by polycyclic aromatic hydrocarbons. Environ. Pollut., 2005, 134, 97–111.
- Kveseth, K., Sortland, B. and Bokn, T., Aromatic hydrocarbons in sewage mussels and tap water. Chemosphere, 1982, 11, 623– 639.
- Vela, N., Martinez-Menchon, M., Navarro, G., Perez-Lucas, G. and Navarro, S., Removal of polycyclic aromatic hydrocarbons (PAHs) from ground water by heterogeneous photocatalysis under natural sunlight. J. Photochem. Photobiol. A Chem., 2012, 232, 32–40.
- Comninellis, A., Kapalka, A., Malato, S., Parsons, S. A., Poulios, I. and Mantzavinos, D., Advanced oxidation processes for water treatment: advances and trends for R&D. J. Chem. Technol. Biotechnol., 2008, 83(1), 769–776.
- Sanches, S., Crespo, M. T. B. and Pereira, V. J., Drinking water treatment of priority pesticides using low pressure UV photolysis and advanced oxidation processes. Water Res., 2010, 44(6), 1809– 1818.
- Sanches, S. et al., Direct photolysis of polycyclic aromatic hydrocarbons in drinking water sources. J. Hazard. Mater., 2011, 192(3), 1458–1465.
- Anandan, S., Vinu, A., Mori, T., Gokulakrishnan, N., Murugesan, V. and Ariga, K., Photocatalytic degradation of 2,4,6-trichlorophenol using lanthanum doped ZnO in aqueous suspension. Catal. Commun., 2007, 8(9), 1377–1382.
- Bayarri, B., Gimenez, J., Curco, D. and Esplugas, S., Photocatalytic degradation of 2,4-dichlorophenol by TiO2/UV: kinetics, actinometrics and models. Catal. Today, 2005, 101(3-4), 227– 236.
- Huang, C. P., Dong, C. and Tang, Z., Advanced chemical oxidation: Its present role and potential future in hazardous waste treatment. Waste Manage., 1993, 13, 361–377.
- Kormann, C., Bahnemann, D. W. and Hoffmann, M. R., Preparation and characterization of quantum-size titanium dioxide. J. Phys. Chem., 1988, 92(18), 5196–5201.
- Bahnemann, D., Cunningham, J., Fox, M. A., Pelizzetti, E., Pichat, P. and Serpone, N., In Aquatic and Surface Photochemistry (eds Helz, G. R., Zepp, R. G. and Crosby), Lewis Publishers, Boca Raton, 1994, p. 261.
- Theurich, J., Bahnemann, D., Vogel, R., Ehamed, F. E., Alhakimi, G. and Rajab, I., Photocatalytic degradation of naphthalene and anthracene: GC-MS analysis of the degradation pathway. Res. Chem. Intermed., 1997, 23(3), 247–274.
- Woo, O. T., Chung, W. K., Wong, K. H. and Chow, A. T., Photocatalytic oxidation of polycyclic aromatic hydrocarbons: intermediates identification and toxicity testing. J. Hazard. Mater., 2009, 168(2–3), 1192–1199.
- Gu, J., Dong, D., Kong, L., Zheng, Y. and Li, X., Photocatalytic degradation of phenanthrene on soil surfaces in the presence of nanometer anatase TiO2 under UV-light. J. Environ. Sci., 2012, 24(12), 2122–2126.
- Lin, H. F. and Valsaraj, K. T., A titania thin film annular photocatalytic reactor for the degradation of polycyclic aromatic hydrocarbons in dilute water streams. J. Hazard. Mater., 2003, 99, 203– 219.
- Vela, N., Mart’inez-Mench’on, G., Navarro, G., P’erez-Lucas and Navarro, S., Removal of polycyclic aromatic hydrocarbons (PAHs) from groundwater by heterogeneous photocatalysis under natural sunlight. J. Photochem. Photobiol. A: Chem., 2012, 232, 32–40.
- Zhang, L., Li, P., Gong, Z. and Li, X., Photocatalytic degradation of polycyclic aromatic hydrocarbons on soil surfaces using TiO2 under UV light. J. Hazard. Mater., 2008, 158, 478–484.
- Liu, B., Chen, B., Zhang, B. Y. and Jing, L., Photocatalytic degradation of polycyclic aromatic hydrocarbons in offshore produced water: effects of water matrix. J. Environ. Eng., 2016, 142(11), 04016054 (1–7).
- Asadi, M., Shayegan, J. and Alaie, E., Photocatalytic degradation of PAHs contaminated soil in south pars economical and energy zone with TiO2 nanocatalyst. Iran J. Chem. Eng., 2007, 4(1), 14– 20.
- Callahan, M. A. et al., Water related environmental fate of 129 priority pollutants. US Environmental Protection Agency, Washington DC, 1979, EPA-440/4-79-029.
- Konstantinou, I. K. and Albanis, T. A., TiO2 assisted photocatalytic degradation of azo dyes in aqueous solution: kinetic and mechanistic investigations: A review. Appl. Catal. B: Environ., 2004, 49(1), 1–14.
- Mills, A., Davis, R. H. and Worsley, D., Water purification by semiconductor photocatalysis. Chem. Soc. Rev., 1993, 22, 417– 487.
- Poulios, I. and Aetopoulou, I., Photocatlytic degradation of the textile dye Reactive Orange 16 in the presence of TiO2 suspensions. Environ. Sci. Technol., 1999, 20(5), 479–487.
- So, C. M., Cheng, M. Y., Yu, J. C. and Wong, P. K., Degradation of azo dye Procion Red MX-5B by photocatalytic oxidation. Chemosphere, 2002, 46, 905–912.
- Damodar, R. A., You, S.-J. and Qu, S.-H., Coupling of membrane separation with photocatalytic slurry reactor for advanced dye wastewater treatment. Sep. Purif. Technol., 2010, 76, 64–71.
- Neppolian, B., Choi, H. C., Sakthivel, S., Arabindoo, B. and Murugesan, V., Solar/UV-induced photocatalytic degradation of three commercial textile dyes. J. Hazard. Mater., 2002, 89(2–3), 303–317.
- Muruganandham, M. and Swaminathan, M., Photocatalytic decolonization and degradation of orange 4 by TiO2–UV process. Dyes. Pigm., 2006, 68, 133–142.
- Laohaprapanon, A., Matahumb, J., Tayob, L. and Youa, S., Photodegradation of reactive black 5 in a ZnO/UV slurry membrane reactor. J. Taiwan Inst. Chem. Eng., 2015, 49, 136–141.
- Fernandez, R. L., McDonald, J. A., Khan, S. J. and Clech, P. L., Removal of pharmaceuticals and endocrine disrupting chemicals by a submerged membrane photocatalysis reactor (MPR). Sep. Purif. Technol., 2014, 127(1), 131–139.
- Mozia, S., Photocatalytic membrane reactors (PMR) in water and wastewater treatment. Sep. Purif. Technol., 2010, 73(2), 71–91.
- Davis, R. J., Gainner, J. L., Neal, G. O. and Wenwu, I., Photocatalytic decolourization of wastewater dyes. Water Environ. Res., 1994, 66, 50–53.
- Zhang, L., Liu, C. Y. and Ren, X. M., Photochemistry of semiconductor particles. Part 4 – Effects of surface condition on the photodegradation of 2,4-dichlorophenol catalyzed by TiO2 suspensions. J. Photochem. Photobiol. A Chem., 1995, 85, 239–245.
- Sakthivel, S., Neppolian, B., Shankar, M. V., Palanichamy, M. and Murugesan, V., Solar photocatalytic degradation of azo dye: comparison of photocatalytic efficiency of ZnO and TiO2. Sol. Energy Mater. Sol. Cells, 2003, 77(1), 65–82.
- Nashio, J., Tokumura, M., Znad, H. T. and Kawase, Y., Photocatalytic decolourization of azo dye with zinc oxide powder in an external UV light irradiation slurry photoreactor. J. Hazard. Mater., 2006, 138, 106–115.
- Antonopoulou, M., Papadopoulos, V. and Konstantinou, I., Photocatalytic oxidation of treated municipal wastewaters for the removal of phenolic compounds: optimization and modeling using response surface methodology (RSM) and artificial neural networks (ANNs). J. Chem. Technol. Biotechnol., 2012, 87(10), 1385–1395.
- Fathinia, M., Khataee, A. R., Zarei, M. and Aber, S., Comparative photocatalytic degradation of two dyes on immobilized TiO2 nanoparticles: effect of dye molecular structure and response surface approach. J. Mol. Catal. A Chem., 2010, 333(1-2), 73–84.
- Stamatis, N., Antonoupoulo, M., Hela, D. and Konstantinou, I., Photocatalytic degradation kinetics and mechanisms of antibacterial triclosan in aqueous TiO2 suspensions under simulated solar irradiation. J. Chem. Technol. Biotechnol., 2014, 89(8), 1145–1154.
Abstract Views: 338
PDF Views: 115