International E-publication: Publish Projects, Dissertation, Theses, Books, Souvenir, Conference Proceeding with ISBN.  International E-Bulletin: Information/News regarding: Academics and Research

Decolorization of acid orange 8 from textile effluent using alkaline OsO4/Chloramine-B solutions: Optimization and kinetic study

Author Affiliations

  • 1Department of Chemistry, Don Bosco Institute of Technology (Affiliated to Visvesvaraya Technological University - Belagavi), Mysore Road, Bengaluru 560 074, India
  • 2Department of Chemistry, Presidency University, Bengaluru-560 064, India
  • 3Department of Chemistry, Jnanabharati Campus, Bangalore University, Bangalore-560 056, India
  • 4Department of Physics, Siddaganga College of Arts, Science and Commerce, Tumakuru, 572102, India

Res.J.chem.sci., Volume 12, Issue (1), Pages 48-57, February,18 (2022)

Abstract

The detoxification of dye effluents produced by the fabric industries is the key challenge in waste water treatment.. The oxidation process developed in the present studies shows many benefits viz., simple, low cost, mild experimental conditions, reduced reaction time, and environmental benevolence. Mono azo dye, acid orange 8 (AO 8) was used as model to explore the feasibility of using chloramine-B (CAB) with osmium tetroxide (OsO4) as a homogeneous catalyst in the practical decolorization of dye in waste water. The influence of process parameters such as dye concentration, CAB concentration, OsO4 concentration, alkali concentration and temperature was examined. The relative reactivity studies with other platinum group metal ions shows that OsO4 is an effective catalyst in the present redox system. The suggested oxidation process has appreciably reduced the Chemical Oxygen Demand (COD). The treated dye was less toxic and it was verified by phytotoxicity analysis. Importantly, this method can be expediently scaled up for industrial applications with appropriate adaptations to minimize the toxicity present in industrial effluents.

References

  1. Zollinger H (2004). Color Chemistry. Synthesis, Properties and Applications of Organic Dyes and Pigments. 3rd revised edition, New York, 5291-5292, 10.1002/anie. 200385122 ., undefined, undefined
  2. Konstantinou, I.K and Albanis T, A. (2004). TiO2-Assisted Photocatalytic Degradation of Azo Dyes in Aqueous Solution: Kinetic and Mechanistic Investigations: A Review. Appl. Catal. B: Enviro., 49, 1-14., undefined, undefined
  3. Forgacs, E., Cserhati T and Oros G. (2004). Removal of Synthetic Dyes from Wastewaters: A Review. Environ. Int., 30, 953-971., undefined, undefined
  4. Manju, B and Sanjeev Chaudhary (2002). Anaerobic Decolorization of Simulated Textile Wastewater Containing Azo Dyes. Bioresource. Tech., 82, 225-231., undefined, undefined
  5. Elizalde-González, M.P and García-Díaz, L.E. (2010) Application of a Taguchi L16 Orthogonal Array for Optimizing the Removal of Acid Orange 8 Using Carbon with a Low Specific Surface Area. Chem. Eng. J., 163(1-2), 55-61., undefined, undefined
  6. Campbell, M.M and Johnson, G. (1978). Chloramine-T and Related N-halogeno-N-metallo Reagents. Chem. Rev., 78, 65-79., undefined, undefined
  7. Kolvari, E., Ghorbani-Choghamarani, A., Salehi, P., Shirini, F., & Zolfigol, M. A. (2007). Application of N-halo reagents in organic synthesis. Journal of the Iranian Chemical Society, 4(2), 126-174., undefined, undefined
  8. Geethanjali, A. (2005). Chloramine-T (Sodium N-chloro-p-toluenesulfonamide). Synlett, 18, 2857-2858., undefined, undefined
  9. Puttaswamy and Jagadeesh, R.V. (2005). Ruthenium(III)-Catalyzed Mechanistic Investigation of Oxidation of an Azo Dye by Sodium N-Haloarenesulfonamidates in Acid Medium: A Comparative Spectrophotometric Kinetic Study. Appl. Catal. A: Gen., 292(1), 259-271., undefined, undefined
  10. Puttaswamy., Vinod, K.N and Gowda, K. N. N. (2008). Oxidation of C.I. Acid Red 27 by Chloramine-T in Perchloric Acid Medium: Spectrophotometric, Kinetic and Mechanistic Approaches. Dyes & Pigm., 78, 131-138., undefined, undefined
  11. Dakshayani, S and Puttaswamy (2016). Synergistic Catalytic Activity of RuCl3 and OsO4 on the Selective Oxidation of Pregabalin Drug Molecule: Exploration of Scope, Reaction Mechanism and Kinetic Modeling. Appl. Catal. A: Gen., 513, 116–126., undefined, undefined
  12. Griffith, W.P. (1967). The Chemistry of Rare Platinum Metals. Interscience, New York, 1- 491., undefined, undefined
  13. Cotton, F.A., Wilkinson, G and Murillo, C.A., & Bochmann, M. (1999). Advanced Inorganic Chemistry. John Wiley and Sons Inc. New York, pp 1-250., undefined, undefined
  14. Manjunatha, A.S and Puttaswamy (2013). Rhodium(III) as a Homogeneous Catalyst for the Oxidative Decolorization of Ethyl Orange with Aqueous Acidic Chloramine-T: A Spectrophotometric, Kinetic and Mechanistic Study. Trans. Met. Chem., 38, 183-90., undefined, undefined
  15. Manjunatha, A.S and Puttaswamy (2015). RuCl3 Catalyzed and Uncatalyzed Oxidative Decolorization of Acid Orange 7 Dye with Chloramine-B in Acid Medium: Spectrophotometric, Kinetic and Mechanistic Study. Catal. Let., 145, 1312-1321., undefined, undefined
  16. Manjunatha, A. S., Anu, S and Puttaswamy. (2014). Oxidative Decolorisation of Eriochrome Black-T with Chloramine-T: Kinetic, Mechanistic, and Spectrophotometric Approaches. Coloration. Tech., 130, 340-348., undefined, undefined
  17. Anu Sukhdev., Manjunatha, A. S and Puttaswamy (2017) Decolorization of Reactive Orange 16 Azo Dye in Wastewater using CAT/ IrCl3/HClO4 Redox System: Delineation of Kinetic Modeling and Mechanistic Approaches. J. Taiwan. Inst. Chem. Eng., 70, 150-160., undefined, undefined
  18. Puttaswamy., Vinod, K.N and Gowda, K.N.N. (2010). Os(VIII) as an Efficient Homogeneous Catalyst for the Oxidative Decolorization of Methylene Blue Dye with Alkaline Chloramine-T: Kinetic, Mechanistic, and Platinum Metal Ions Reactivity Studies. Ind. Eng. Chem. Res., 249, 3137-3145., undefined, undefined
  19. Morris. J.C., Salazar, J.A and Wineman, M.A. (1948) Equilibrium Studies on Chloro Compounds: The Ionization Constant of N-chloro-p-toluenesulfonamide. J. Am. Chem. Soc., 70(1), 2036- 2041., undefined, undefined
  20. Venkatesha, B. M., Ananda, S., & Mahadevappa, D. S. (1992). Oxidation of indole by N‐sodio‐N‐chlorobenzene sulphonamide (chloramine‐B) in alkaline medium catalysed by os (viii): A kinetic and mechanistic study. Journal of physical organic chemistry, 5(7), 373-381., undefined, undefined
  21. Akerloff, G. (1932). Dielectric Constants of Some Organic Solvents–Water Mixtures at Various Temperatures. J. Am. Chem. Soc., 54, 4125-4139., undefined, undefined
  22. Dakshayani, S. Puttaswamy. (2019). Osmium tetroxide Catalyzed Oxidation of Mefenamic and Tolfenamic acids with Alkaline Chloramine-B: Delineation of Kinetic, Mechanistic and Catalytic Chemistry. Chem. Data Coll., 21, 100224, undefined, undefined
  23. Nirmala Vaz., Manjunatha, A.S and Puttaswamy (2015). Oxidation of Metformin with Alkaline Chloramine-B: Delineation of Reaction Mechanism and Kinetic Modeling. Ind. J. Chem., 54A, 484-488., undefined, undefined
  24. Pryde, B.G and Soper, F.D. (1931). The Direct Interchange of Chlorine in the Interaction of P- Toluenesulfonamide and N-Chloroacetanilide. J. Chem. Soc., 1510., undefined, undefined
  25. Bishop, E and Jennings, V. J. (1958). Titrimetric Analysis with Chloramine-T: The Status of Chloramine-T as a Titrimetric Reagent. Talanta, 1, 197-212., undefined, undefined
  26. Hardy, F.F and Johnston, J.P (1973). The Interaction of N-bromo-N-sodiobenzenesulphonamide (bromamine B) with p-nitrophenoxide ion. J. Chem. Soc., 2, 742-745., undefined, undefined
  27. Murthy, A.R.V and Rao, B.S (1952). Oxidation by chloramine-T. Part II. Redox potential of Chloramine-T-sulfonamide systems. Proc. Ind. Acad. Sci., 35, 69–72., undefined, undefined
  28. Mahadevappa, D. S and Rangaswamy. (1977). Physico-chemical Properties of Chloramine-B. Con ductometrics Study of the Interaction of Chloramine-B with Cr(III), Al(III) and Fe(III) Solutions. Rev. Roum. Chim. 22, 1233-1242., undefined, undefined
  29. Puttaswamy and Nirmala Vaz. (2001). Kinetics and Mechanism of Ruthenium(III) and Osmium(VIII) Catalyzed Oxidation of Dopamine with Bromamine-B in Acid and Alkaline Media. Stud. Surf. Sci. Catal, 33(1), 535-540., undefined, undefined
  30. Puttaswamy and Jagadeesh, R.V (2006). Chloraminometric and Bromaminometric Oxidation of Sulfanilic Acid in Alkaline Medium: A Comparative Kinetic and Mechanistic Study. Int. J. Chem. Kinet., 38(1), 48-56., undefined, undefined
  31. Sauerbrunn, R. D and Sandell E.B. (1953). The Ionization Constants of Osmic(VIII) Acid. J. Am. Chem. Soc., 75, 4170-4178., undefined, undefined
  32. Mackay, A.M and Mackay, R.A. (1989). Introduction to Modern Inorganic Chemistry, 4th Edn. (Englewood Cliffs: Prentice-Hall pp 1-265., undefined, undefined
  33. Mayell, J. S. (1968). Oxidation of Olefins by Ferricyanide using Osmium Tetroxide Catalyst. Ind. Eng. Chem. Res., 1968, 7, 129-136., undefined, undefined
  34. Puttaswamy., Anu Sukhdev and Shubha, J.P. (2009). Kinetics and reactivities of ruthenium(III)- and osmium (VIII)-catalyzed oxidation of ornidazole with chloramine-T in acid and alkaline media: A mechanistic approach. J. Mol. Catal. A: Chem., 310(1), 24-33., undefined, undefined
  35. Tanford, C and Kirkwood, J. G (1957). Theory of Protein Titration Curves. I. General Equations for Impenetrable Spheres. J. Am. Chem. Soc., 79, 5333–5359., undefined, undefined
  36. Reichardt., Solvent and Solvent Effects in Organic Chemistry,; 3rd edition, Wiley, New York, 1- 321., undefined, undefined
  37. Amis, E.S (1966) Solvents Effects on Reaction Rates and Mechanism.; Academic Press, New York, pp 1-265., undefined, undefined
  38. Laidler, K.J (2012). Chemical Kinetics.; Pearson education, South Asia. 1-384., undefined, undefined
  39. Moelwyn-Hughes E.A (1947). Kinetics of Reactions in Solutions, Oxford University, London, 1-325., undefined, undefined
  40. Gomati Devi, L and Mohan Reddy, K (2010). Enhanced Photocatalytic Activity of Silver Metallized Tio2 Particles in the Degradation of an Azo Dye Methyl Orange: Characterization and Activity at Different pH Values. Appl. Surf. Sci., 256(10), 3116–3122., undefined, undefined
  41. Sarvendra-Kumar., Patra, A.K and Datta, S.C.; et al., (2015). Phytotoxicity of Nanoparticles to Seed Germination of Plants. Int. J. Advan. Res. 3(3), 854-865., undefined, undefined