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Radioactive Concentrations in Chemical Fertilizers

  • Gwang-Ho Kim (Department of Medical Device Management and Research, Samsung Advanced Institute for Health Sciences & Technology, Sungkyunkwan University) ;
  • Jae-Hwan Cho (Department of Radiologic Science, Ansan University)
  • Received : 2021.07.07
  • Accepted : 2022.08.01
  • Published : 2022.12.31

Abstract

Background: The aim of the present study was to determine radioactive concentrations in fertilizers known to contain essential nutrients. Results of this study could be used as basic data to monitor the impact of chemical fertilizers on the environment and public health. Nitrogen fertilizers, calcium fertilizers, sulfur fertilizers, phosphate acid fertilizers, and potassium chloride fertilizers were used in this study. Materials and Methods: Five chemical fertilizers were pulverized, placed in polyethylene containers, and weighed. The time to measure each specimen was set to be 3,600 seconds for a scintillator-based gamma-ray spectroscopy system. Concentration of gamma radionuclide was analyzed based on obtained spectra. At the end of the measurement, the spectrum file was stored and used to calculate radioactive concentrations using a gamma-ray spectrometer software. Results and Discussion: In the nitrogen fertilizer, 3.49 ± 5.71 Bq/kg of 137Cs, 34.43 ± 7.61 Bq/kg of 134Cs, and 569.16 ± 91.15 of 40K were detected whereas 131I was not detected. In the calcium fertilizer, 5.74 ± 4.40 Bq/kg of 137Cs (the highest concentration among all fertilizers), 22.37 ± 5.39 Bq/kg of 134Cs, and 433.67 ± 64.24 Bq/kg of 40K were detected whereas 131I was not detected. In the sulfur fertilizer, 347.31 ± 55.73 Bq/kg of 40K, 19.42 ± 4.53 Bq/kg of 134Cs, 2.21 ± 3.49 of 137Cs, and 0.04 ± 0.22 Bq/Kg of 131I were detected. In the phosphoric acid fertilizer, 70,007.34 ± 844.18 Bq/kg of 40K (the highest concentration among all fertilizers) and 46.07 ± 70.40 Bq/kg of 134Cs were detected whereas neither 137Cs nor 131I was detected. In the potassium chloride fertilizer, 12,827.92 ± 1542.19 Bq/kg of 40K was and 94.76 ± 128.79 Bq/kg of 134Cs were detected whereas neither 137Cs nor 131I was detected. The present study examined inorganic fertilizers produced by a single manufacturer. There might be different results according to the country and area from which fertilizers are imported. Further studies about inorganic fertilizers in more detail are needed to create measures to reduce 40K. Conclusion: Measures are needed to reduce radiation exposure to 40K contained in fertilizers including phosphoric acid and potassium chloride fertilizers.

Keywords

References

  1. Glasser O. W. C. Roentgen and the discovery of the Roentgen rays. AJR Am J Roentgenol. 1995;165(5):1033-1040. https://doi.org/10.2214/ajr.165.5.7572472
  2. Byun MW, Yook HS. Internal and external situation of irradiation technology utilization in the food and pubic health industry. Korean J Food Preserv. 2003;10(1):106-123.
  3. Heo J. Radiation biology. Seoul: Shinkwang Publishing; 1998.
  4. Mettler FA, Sinclair WK, Anspaugh L, Edington C, Harley JH, Ricks RC, et al. The 1986 and 1988 UNSCEAR (United Nations Scientific Committee on the Effects of Atomic Radiation) reports: findings and implications. Health Phys. 1990;58(3):241-250. https://doi.org/10.1097/00004032-199003000-00001
  5. International Commission on Radiological Protection. 1990 Recommendations of the International Commission on Radiological Protection (ICRP Publication 60). Ann ICRP. 1991;21(1-3): 1-201. https://doi.org/10.1016/0146-6453(91)90065-O
  6. Absalom JP, Young SD, Crout NM, Sanchez A, Wright SM, Smolders E, et al. Predicting the transfer of radiocaesium from organic soils to plants using soil characteristics. J Environ Radioact. 2001;52(1):31-43.
  7. Topping CE, Abella MK, Berkowitz ME, Molina MR, Nikolic-Hughes I, Hughes EW, et al. In situ measurement of cesium-137 contamination in fruits from the northern Marshall Islands. Proc Natl Acad Sci U S A. 2019;116(31):15414-15419. https://doi.org/10.1073/pnas.1903481116
  8. Merz S, Shozugawa K, Steinhauser G. Analysis of Japanese radionuclide monitoring data of food before and after the Fukushima nuclear accident. Environ Sci Technol. 2015;49(5):2875-2885. https://doi.org/10.1021/es5057648
  9. Hamada N, Ogino H, Fujimichi Y. Safety regulations of food and water implemented in the first year following the Fukushima nuclear accident. J Radiat Res. 2012;53(5):641-671. https://doi.org/10.1093/jrr/rrs032
  10. Hamada N, Ogino H. Food safety regulations: what we learned from the Fukushima nuclear accident. J Environ Radioact. 2012; 111:83-99. https://doi.org/10.1016/j.jenvrad.2011.08.008
  11. Francis AJ, Nancharaiah YV. In situ and ex situ bioremediation of radionuclide-contaminated soils at nuclear and norm sites. In: Van Velzen L, editor. Environmental remediation and restoration of contaminated nuclear and norm sites. Sawston, UK: Woodhead Publishing; 2015. p. 185-236.
  12. Moon EK, Ha WH, Seo S, Jin YW, Jeong KH, Yoon HJ, et al. Estimates of radiation doses and cancer risk from food intake in Korea. J Korean Med Sci. 2016;31(1):9-12. https://doi.org/10.3346/jkms.2016.31.1.9
  13. Schnug E, Lottermoser BG. Fertilizer-derived uranium and its threat to human health. Environ Sci Technol. 2013;47(6):2433- 2434. https://doi.org/10.1021/es4002357
  14. Khater AE, AL-Sewaidan HA. Radiation exposure due to agricultural uses of phosphate fertilizers. Radiat Meas. 2008;43(8):1402-1407. https://doi.org/10.1016/j.radmeas.2008.04.084
  15. Fuge R. Iodine in the environment its distribution and relationship to human health [Internet]. Vienna, Austria: International Atomic Energy Agency; 1987 [cited 2022 Jan 4]. Available from: https://inis.iaea.org/search/searchsinglerecord.aspx?recordsFo r=SingleRecord&RN=19105067.
  16. Rivkees SA, Sklar C, Freemark M. Clinical review 99: the management of Graves' disease in children, with special emphasis on radioiodine treatment. J Clin Endocrinol Metab. 1998;83(11): 3767-3776. https://doi.org/10.1210/jcem.83.11.5239
  17. Braverman ER, Blum K, Loeffke B, Baker R, Kreuk F, Yang SP, et al. Managing terrorism or accidental nuclear errors, preparing for iodine-131 emergencies: a comprehensive review. Int J Environ Res Public Health. 2014;11(4):4158-4200. https://doi.org/10.3390/ijerph110404158
  18. Kadi MW, Al-Eryani DA. Natural radioactivity and radon exhalation in phosphate fertilizers. Arab J Sci Eng. 2012;37(1):225-231. https://doi.org/10.1007/s13369-011-0156-3
  19. International Atomic Energy Agency. Measurement of radionuclides in food and the environment: a guidebook. Vienna, Austria: International Atomic Energy Agency; 1989.
  20. Marovic G, Sencar J. 226Ra and possible water contamination due to phosphate fertilizer production. J Radioanal Nucl Chem. 1995;200(1):9-18. https://doi.org/10.1007/BF02164816
  21. Righi S, Lucialli P, Bruzzi L. Health and environmental impacts of a fertilizer plant: part I: assessment of radioactive pollution. J Environ Radioact. 2005;82(2):167-182. https://doi.org/10.1016/j.jenvrad.2004.11.007
  22. Stansfield CM. Legislation: contaminants and adulterants. In: Caballero B, editor. Encyclopedia of food sciences and nutrition. New York, NY: Academic Press; 2003. p. 3507-3513.
  23. Alam MN, Chowdhury MI, Kamal M, Ghose S, Banu H, Chakraborty D. Radioactivity in chemical fertilizers used in Bangladesh. Appl Radiat Isot. 1997;48(8):1165-1168. https://doi.org/10.1016/S0969-8043(97)00019-5
  24. Ghosh D, Deb A, Bera S, Sengupta R, Patra KK. Measurement of natural radioactivity in chemical fertilizer and agricultural soil: evidence of high alpha activity. Environ Geochem Health. 2008; 30(1):79-86. https://doi.org/10.1007/s10653-007-9114-0
  25. Rajacic MM, Sarap NB, Jankovic MM, Nikolic DJ, Todorovic DJ, Pantelic GK. Radioactivity in chemical fertilizers. Island of Krk, Croatia: Proceedings of 9th Symposium of the Croatian Radiation Protection Association; 2013 April 10-12.
  26. Azeez HH, Mansour HH, Ahmad ST. Effect of using chemical fertilizers on natural radioactivity levels in agricultural soil in the Iraqi Kurdistan region. Pol J Environ Stud. 2020;29(2):1059-1068. https://doi.org/10.15244/pjoes/106032
  27. Peralta AA, Link MS, Schwartz J, Luttmann-Gibson H, Dockery DW, Blomberg A, et al. Exposure to air pollution and particle radioactivity with the risk of ventricular arrhythmias. Circulation. 2020;142(9):858-867. https://doi.org/10.1161/CIRCULATIONAHA.120.046321
  28. Bonotto DM, Bueno TO, Tessari BW, Silva A. The natural radioactivity in water by gross alpha and beta measurements. Radiat Meas. 2009;44(1):92-101.
  29. Faheem M, Mujahid SA, Matiullah. Assessment of radiological hazards due to the natural radioactivity in soil and building material samples collected from six districts of the Punjab provincePakistan. Radiat Meas. 2008;43(8):1443-1447. https://doi.org/10.1016/j.radmeas.2008.02.014
  30. Ulsh B, Hinton TG, Congdon JD, Dugan LC, Whicker FW, Bedford JS. Environmental biodosimetry: a biologically relevant tool for ecological risk assessment and biomonitoring. J Environ Radioact. 2003;66(1-2):121-139. https://doi.org/10.1016/S0265-931X(02)00119-4
  31. Vandecasteele CM. Environmental monitoring and radioecology: a necessary synergy. J Environ Radioact. 2004;72(1-2):17-23. https://doi.org/10.1016/S0265-931X(03)00181-4
  32. Zmazek B, Vaupotic J. Coping with radon problem in a private house. Build Environ. 2007;42(10):3685-3690. https://doi.org/10.1016/j.buildenv.2006.09.009
  33. Lee HM, Moon KH, Kim JS, Ahn JK, Kim HC. Distribution of some environmental radionuclides in rocks and soils of Guemjeong-gu area in Busan, Korea. J Petrol Soc Korea. 2008;17(3): 179-190.
  34. Ministry Law Korea. Hazardous limits of radiation [Internet]. Sejong: Korean Law Information Center; 2016 [cited 2022 Jan 4]. Available from: https://www.law.go.kr/행정규칙/방사선방호등에관한기준/(2016-16,20160831).
  35. Jang JG. Investigation and analysis of actual state of safety management for radiation in the natural environment. Seoul, Korea: Korean Industrial Hygiene Association; 2014.
  36. Missimer TM, Teaf C, Maliva RG, Danley-Thomson A, Covert D, Hegy M. Natural radiation in the rocks, soils, and groundwater of Southern Florida with a discussion on potential health impacts. Int J Environ Res Public Health. 2019;16(10):1793. https://doi.org/10.3390/ijerph16101793
  37. Choi MS, Lin XJ, Lee SA, Kim W, Kang HD, Doh SH, et al. Daily intakes of naturally occurring radioisotopes in typical Korean foods. J Environ Radioact. 2008;99(8):1319-1323. https://doi.org/10.1016/j.jenvrad.2008.04.003
  38. International Atomic Energy Agency (IAEA). International basic safety standards for protection against ionizing radiation and for the safety of radiation sources [Internet]. Vienna: IAEA; 1996 [cited 2022 Jan 4]. Available from: http://www-ns.iaea.org/standards/
  39. Hassan NM, Mansour NA, Fayez-Hassan M, Fares S. Assessment of radiation hazards due to exposure to radionuclides in marble and ceramic commonly used as decorative building materials in Egypt. Indoor Built Environ. 2017;26(3):317-326. https://doi.org/10.1177/1420326X15606507
  40. Hassan NM. Radon emanation coefficient and its exhalation rate of wasted petroleum samples associated with petroleum industry in Egypt. J Radioanal Nucl Chem. 2014;299(1):111-117. https://doi.org/10.1007/s10967-013-2718-1
  41. Iwaoka K, Tabe H, Yonehara H. Natural radioactivity of bedrock bath instruments and hot spring instruments in Japan. J Radioanal Nucl Chem. 2013;295(2):817-821. https://doi.org/10.1007/s10967-012-1844-5
  42. Bracht LK, Wen P, Meyerhardt JA, Kulke MH, Hornick JL, Redston M, et al. DNA repair enzyme expression and differential response to temozolomide in a patient with both glioblastoma and metastatic pancreatic neuroendocrine tumor. J Clin Oncol. 2008;26(29): 4843-4844. https://doi.org/10.1200/JCO.2008.18.1776
  43. Lawrence TS, Robertson JM, Anscher MS, Jirtle RL, Ensminger WD, Fajardo LF. Hepatic toxicity resulting from cancer treatment. Int J Radiat Oncol Biol Phys. 1995;31(5):1237-1248. https://doi.org/10.1016/0360-3016(94)00418-K
  44. Kim J, Jung Y. Radiation-induced liver disease: current under-standing and future perspectives. Exp Mol Med. 2017;49(7):e359. https://doi.org/10.1038/emm.2017.85
  45. Benson R, Madan R, Kilambi R, Chander S. Radiation induced liver disease: a clinical update. J Egypt Natl Canc Inst. 2016;28(1): 7-11. https://doi.org/10.1016/j.jnci.2015.08.001
  46. Nazaroff WW. Radon transport from soil to air. Rev Geophys. 1992;30(2):137-160. https://doi.org/10.1029/92RG00055
  47. Hassan NM, Hosoda M, Ishikawa T, Sorimachi A, Sahoo SK, Tokonami S, et al. Radon migration process and its influence factors; review. Jpn J Health Phys. 2009;44(2):218-231. https://doi.org/10.5453/jhps.44.218
  48. United Nations Scientific Committee on the Effects of Atomic Radiation. Sources and effects of ionizing radiation (Volume 1). New York, NY: United Nations Scientific Committee on the Effects of Atomic Radiation; 2000.