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A comparison of the virucidal properties of chlorine, chlorine dioxide, bromine chloride and iodine

Published online by Cambridge University Press:  25 March 2010

G. R. Taylor
Affiliation:
University of Surrey, Guildford, Surrey GU2 5XH
M. Butler
Affiliation:
University of Surrey, Guildford, Surrey GU2 5XH
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Summary

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Chlorine dioxide, bromine chloride and iodine were compared with chlorine as virucidal agents. Under optimal conditions all disinfectants were effective at low concentrations, but each disinfectant responded differently to acidity and alkalinity. Disinfection by chlorine was impaired by the presence of ammonia, but the other disinfectants retained much of their potency. Disinfection of poliovirus by iodine resulted in structural changes in the virions as seen by electron microscopy, but the other disinfectants were able to inactivate poliovirus without causing any apparent structural changes.

Type
Research Article
Copyright
Copyright © Cambridge University Press 1982

References

REFERENCES

Adams, M. H. (1959). Bacteriophages. New York: Interscience.CrossRefGoogle Scholar
Alvarez, M. E. & O'Brien, R. T. (1982). Effects of chlorine concentration on the structure of poliovirus. Applied and Environmental Microbiology 43, 237239.CrossRefGoogle ScholarPubMed
Balluz, S. A., Butler, M. & Jones, H. H. (1978). The behaviour of f2 coliphage in activated sludge treatment. Journal of Hygiene 80, 237242.CrossRefGoogle ScholarPubMed
Balluz, S. A., Jones, H. H. & Butler, M. (1977). The persistence of poliovirus in activated sludge treatment. Journal of Hygiene 78, 165173.CrossRefGoogle ScholarPubMed
Berg, E., Dahling, D. R., Brown, G. A. & Bekman, D. (1978). Validity of fecal coliforms; total coliforms and fecal streptococci as indicators of viruses in chlorinated primary sewage effluent. Applied and Environmental Microbiology 36, 880890.CrossRefGoogle Scholar
Boublik, M. & Drzeniek, R. (1976). Demonstration of a core in poliovirus particles by electron microscopy. Journal of General Virology 31, 447449.CrossRefGoogle ScholarPubMed
Burleson, G. R., Murray, T. M. & Pollard, M. (1975). Inactivation of viruses and bacteria by ozone, with and without sonication. Applied Microbiology 29, 340344.CrossRefGoogle ScholarPubMed
Butterfield, C. T., Wattie, E., Megregian, S. & Chambers, C. W. (1943). Influence of pH and temperature on the survival of coliforms and enteric pathogens when exposed to free chlorine. Public Health Reports 58, 18371866.CrossRefGoogle Scholar
Cramer, W. N., Kawata, K. & Cruse, C. W. (1976). Chlorination and iodination of poliovirus and f2. Journal of the Water Pollution Control Federation 48, 6176.Google ScholarPubMed
Cronier, S., Scarpino, P. V., Zink, M. L. & Hoff, J. C. (1977). Destruction by chlorine dioxide of viruses and bacteria in water. Abstract no. N 58.In Abstracts of the Annual Meeting of the American Society for Microbiology1977.American Society for Microbiology.Google Scholar
Dubra, M. S., La Tone, J. L., Scodeller, E. A., Denoza, C. D. & Vasquez, C. (1982). Cores in foot and mouth disease virus. Virology 116, 349353.CrossRefGoogle ScholarPubMed
Engelbrecht, R. S., Weber, M. J., Schmidt, C. A. & Salter, B. L. (1978). Virus sensitivity to chlorine disinfection of water supplies. United States Environmental Protection Agency Report, no. 600/2–78–123.Google Scholar
Hajenian, H. & Butler, M. (1980). Inactivation of f2 coliphage in municipal effluent by the use of various disinfectants. Journal of Hygiene 84, 247255.CrossRefGoogle ScholarPubMed
Johansen, E. S. & Myhrstad, J. A. (1978). Factors influencing the use of ultraviolet irradiation as a water disinfectant. Annals of the Norwegian National Institute of Public Health 1, 310.Google Scholar
Keswick, B. H., Fujioka, R. S., Burbank, N. C. & Loh, P. C. (1978). Comparative disinfection efficiency of bromine chloride and chlorine for poliovirus. Journal of the American Water Works Association 70, 573577.CrossRefGoogle Scholar
Kott, Y., Nupan, E. M. & Ross, W. R. (1975). The effect of pH on the efficiency of chlorine disinfection and virus enumeration. Water Research 9, 869872.CrossRefGoogle Scholar
Mellor, J. N. (1927). A Comprehensive Treatise on Inorganic and Theoretical Chemistry, vol. ii, p. 288. Longmans, Green.Google Scholar
Mills, J. F. (1975). In Disinfection – Water and Wastewater (ed. Johnson, J. D.), pp. 113143, Ann Arbor, Michigan: Ann Arbor Science Publications.Google Scholar
O'Brien, R. T. & Newman, J. (1979). Structural and compositional changes associated with chlorine inactivation of poliovirus. Applied and Environmental Microbiology 38, 10341039.CrossRefGoogle Scholar
Olivieri, V. P., Cruse, C. W., Hsu, Y. C., Griffiths, A. C. & Kawata, K. (1975). The comparative mode of action of chlorine, bromine and iodine on f2 bacterial virus. In Disinfection – Water and Wastewater (ed. Johnson, J. D.), pp. 145203. Ann Arbor, Michigan: Ann Arbor Science Publishers.Google Scholar
Palin, A. T. (1975). Current DPD methods for residual halogen compounds and ozone in water. Journal of the American Water Works Association 67, 3233.CrossRefGoogle Scholar
Scarpino, P. V., Lucas, M., Dahling, D. R., Berg, G. & Chang, S. L. (1974). Effectiveness of hypochlorous acid and hypochlorite ion in destruction of viruses and bacteria. In Chemistry of Water Supply, Treatment and Distribution (ed. Rubin, A. J.), pp. 359368. Ann Arbor, Michigan: Ann Arbor Science Publishers.Google Scholar
Sharp, D. G., Floyd, R. & Johnson, J. D. (1975). Nature of the surviving plaque-forming unit of reovirus in water containing bromine. Applied Microbiology 29, 94101.CrossRefGoogle ScholarPubMed
Taylor, G. R. (1981). The limitations of redox potential as an estimate of the virucidal properties of disinfectants. In Viruses and Wastewater Treatment (ed. Goddard, M. and Butler, M.), pp. 183187. Pergamon Press, Oxford.CrossRefGoogle Scholar
Tenno, K. M., Fujioka, R. & Loh, P. C. (1979). The mechanism of poliovirus inactivation by hypochlorous acid. In Proceedings of the 3rd Conference on Water Chlorination: Environmental Impact and Health Effects (ed. Jolley, R.., Brungs, W. A. and Cumming, R. B.), pp. 665675, Ann Arbor, Michigan: Ann Arbor Science Publishers.Google Scholar
Warren, I. C. & Ridgeway, J. (1978). Swimming Pool Disinfection. United Kingdom Water Research Centre Technical Report TR90.Google Scholar
Weidenkof, S. J. (1958). Inactivation of type I poliomyelitis virus with chlorine. Virology 5, 5667.CrossRefGoogle Scholar