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Articles

Intensification of sonochemical degradation of chlorobenzene using additives

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Pages 2623-2635 | Received 06 Jun 2013, Accepted 31 Oct 2013, Published online: 21 Nov 2013

References

  • E. Selli, C.L. Bianchi, C. Pirola, G. Cappelletti, V. Ragaini, Efficiency of 1,4-dichlorobenzene degradation in water under photolysis, photocatalysis on TiO2 and sonolysis, J. Hazard. Mater. 153 (2008) 1136–1141.
  • J. Wang, Y. Mei, C. Liu, J. Chen, Chlorobenzene degradation by electro-heterogeneous catalysis in aqueous solution: Intermediates and reaction mechanism, J. Environ. Sci. 20 (2008) 1306–1311.
  • M. Ogata, T. Taguchi, N. Hirota, Y. Shimada, S. Nakae, Quantitation of urinary chlorobenzene metabolites by HPLC: Concentrations of 4-chlorocatechol and chlorophenols in urine and of chlorobenzene in biological specimens of subjects exposed to chlorobenzene, International Archives Occupational Environmental Health 63 (1991) 121–128.
  • C. Petrier, Y. Jiang, M.F. Lamy, Ultrasound and Environment: Sonochemical destruction of chloroaromatic derivatives, Environ. Sci. Technol. 32 (1998) 1316–1318.
  • P.R. Gogate, Cavitation: An auxiliary technique in waste water treatment schemes, Adv. Env. Res. 6 (2002) 335–352.
  • P.R. Gogate, A.B. Pandit, A review of imperative technologies for wastewater treatment II: Hybrid methods, Adv. Environ. Res. 8 (2004) 553–597.
  • P.R. Gogate, R.K. Tayal, A.B. Pandit, Cavitation: A technology on the horizon, Current Science 91 (2006) 35–46.
  • J. Liang, S. Komarov, N. Hayashi, E. Kasa, Improvement in sonochemical degradation of 4-chlorophenol by combined use of fenton-like reagents, Ultrason. Sonochem. 14 (2007) 201–207.
  • C. Stavarache, B. Yim, M. Vinatoru, Y. Maeda, Sonolysis of chlorobenzene in fenton-type aqueous systems, Ultrason. Sonochem. 9 (2002) 291–296.
  • C. Stavarache, M. Vinatoru, R. Nishimura, Y. Maeda, Short time sonolysis of chlorobenzene in presence of Pd(II) salts and Pd(0), Ultrason. Sonochem. 11 (2004) 429–434.
  • D. Drijvers, H.V. Langenhove, K. Vervaet, Sonolysis of chlorobenzene in aqueous solution: Organic intermediates, Ultrason. Sonochem. 5 (1998) 13–19.
  • D. Drijvers, H.V. Langenhove, L.N.T. Kim, L. Bray, Sonolysis of an aqueous mixture of trichloroethylene and chlorobenzene, Ultrason. Sonochem. 6 (1999) 115–121.
  • P. Kruus, R.C. Burk, M.H. Entezari, R. Otson, Sonication of aqueous solutions of chlorobenzene, Ultrason. Sonochem. 4 (1997) 229–233.
  • J. Dewulf, H.V. Langenhove, A.D. Visscher, S. Sabbe, Ultrasonic degradation of trichloroethylene and chlorobenzene at micromolar concentration: Kinetic and modeling, Ultrason. Sonochem. 8 (2001) 143–150.
  • J.S. Parent, G.L. Rempel, Solubility of hydrogen in chlorobenzene, J. Chem. Eng. Data 41 (1996) 192–194.
  • C. Petrier, E. Combet, T. Mason, Oxygen-induced concurrent ultrasonic degradation of volatile and non-volatile aromatic compounds, Ultrason. Sonochem. 14 (2007) 117–121.
  • S.N. Katekhaye, P.R. Gogate, Intensification of cavitational activity in sonochemical reactors using different additives: Efficacy assessment using a model reaction, Chem. Process. Eng. 50 (2011) 95–103.
  • H. Gallard, J.D. Laat, Kinetics of oxidation of chlorobenzenes and phenyl-ureas by Fe(II)/H2O2 and Fe(III)/H2O2. Evidence of reduction and oxidation reactions of intermediates by Fe(II) or Fe(III), Chemosphere 42 (2001) 405–413.
  • M. Pagano, A. Volpe, A. Lopez, G. Mascolo, R. Ciannarella, Degradation of chlorobenzene by Fenton-like processes using zero-valent iron in presence of Fe3+ and Cu2+, Environ. Technol. 32 (2011) 155–165.
  • C. Petrier, R. Torres-Palma, E. Combet, G. Sarantakos, S. Baup, C. Pulgarin, Enhanced sonochemical degradation of bisphenol-A by bicarbonate ions, Ultrason. Sonochem. 17 (2010) 111–115.
  • Y.L. Pang, A.Z. Abdullah, S. Bhatia, Review on sonochemical methods in the presences of catalysts and chemical additives for treatment of organic pollutant in wastewater, Desalination 277 (2010) 1–14.
  • R.J. Emery, M. Papadki, D. Mantzavinos, Sonochemical degradation of phenolic pollutants in aqueous solutions, Environ. Technol. 24 (2003) 1491–1500.
  • I. Gultekin, N.H. Ince, Ultrasonic destruction of bisphenol-A: The operating parameters, Ultrason. Sonochem. 15 (2008) 524–529.
  • H. Okuno, B. Yim, Y. Mizukoshi, Y. Nagata, Y. Maeda, Sonolytic degradation of hazardous organic compounds in aqueous solution, Ultrason. Sonochem. 7 (2000) 261–264.
  • P.R. Gogate, A.M. Wilhelm, A.B. Pandit, Some aspects of the design of sonochemical reactors, Ultrason. Sonochem. 10 (2003) 325–330.
  • T. Sivasankar, V.S. Moholkar, Physical insights into the sonochemical degradation of recalcitrant organic pollutants with cavitation bubble dynamics, Ultrason. Sonochem. 16 (2009) 769–781.
  • T. Sivasankar, V.S. Moholkar, Mechanistic features of the sonochemical degradation of organic pollutants, AIChE J. 54 (2008) 2206–2219.
  • T. Sivasankar, V.S. Moholkar, Physical insight into the sonochemical degradation of 2,4-dichlorophenol, Environ. Technol. 31 (2010) 1483–1494.
  • T. Sivasankar, A.W. Paunikar, V.S. Moholkar, Mechanistic approach to enhancement of the yield of sonochemical reaction, AIChE J. 53 (2007) 1132–1143.
  • S. Chakma, V.S. Moholkar, Physical mechanism of sono-fenton process, AIChE J. 59 (2013) 4303–4313.
  • J.B. Bhasarkar, S. Chakma, V.S. Moholkar, Mechanistic features of oxidative desulfurization using sono-fenton-peracetic acid (ultrasound/Fe2+-CH3COOH-H2O2) system, Ind. Eng. Chem. Res. 52 (2013) 9038–9047.
  • P.S. Bapat, P.R. Gogate, A.B. Pandit, Theoretical analysis of sonochemical degradation of phenol and its chloro-derivatives, Ultrason. Sonochem. 15 (2008) 564–570.
  • A.G. Chakinala, D.H. Bremner, P.R. Gogate, K.C. Namkung, A.E Burgess, Multivariate analysis of phenol mineralisation by combined hydrodynamic cavitation and heterogeneous advanced Fenton processing, App. Cat. B: Env. 78 (2008) 11–18
  • A.G. Chakinala, P.R. Gogate, A.E. Burgess, D.H. Bremner, Industrial wastewater treatment using hydrodynamic cavitation and heterogeneous advanced fenton processing, Chem. Eng. J. 152 (2009) 498–502.

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