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Mercury content in agricultural soils (Vojvodina Province, Serbia)

  • Recent Advances in Chemistry and the Environment
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Abstract

The Vojvodina Province in northern Serbia is well known for its intensive field crops production. Over 90 % of total arable land, which represents more than 1500.000 ha, is used for field or vegetable crop production. A grid superimposed on Vojvodina land by means of a GIS tool (GIS ArcView 10) has divided land into 4 × 4 km units, each representing an area of 1600 ha. Total number of 1370 bulked soil samples were taken (0–30 cm depth) from agricultural land and analysed for total mercury content THg. The samples were analysed using Direct Mercury Analyzer DMA 80 Milestone. Quality control was carried out with IRMM BCR reference materials 143R. The aim of this study was to determine the total content of Hg in agricultural soils and its spatial distributions in different parts of Vojvodina Province. The obtained results were within interval 0.008–0.974 mg kg−1. The average concentration of Hg was 0.068, with median 0.048 mg kg−1. The correlation was determined between Hg concentration and organic matter content in the soil. Content of Hg coincides with main geomorphological units of Vojvodina Province. Average values of Hg concentrations for soils formatted on different geomorphological units were 0.031 for sandy area with dune fields, 0.048 for alluvial terraces, 0.055 for upper Pleistocene terraces, 0.058 for loess plateaus, 0.083 for mountains and 0.092 mg kg−1 for alluvial plains. Hg spatial distribution confirmed that most of Vojvodina Province area has geochemical origin of Hg. Higher concentration of Hg on alluvial plains indicated that the origin of Hg near rivers could be from anthropogenic source. The main rivers in Vojvodina have been dammed more than a century ago. Thus, higher concentrations of Hg in their alluvial plains out of narrow dammed zone around the rivers must be related to natural and anthropogenic sources located in their huge catchments. Higher content of Hg in mountain region can be explained by high clay content in these soils. Additional hotspots of Hg concentration of top soils are related to geographical locations of major towns. The obtained results also indicated that the measured levels of Hg in the soil are not limiting factors for production of safe food in Vojvodina.

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References

  • Adriano DC (2001) Trace elements in terrestrial enviroments: biogeochemistry, bioavailability, and risks of metals, 2nd edn. Springer-Verlag, New York, p. 415

  • Bukurov B (1972) Geomorphological characteristics of SAP Vojvodina area. Geomorfološke karakteristike područja SAP Vojvodine. Regionalni prostorni plan SAP Vojvodine, Novi Sad (in Serbian)

  • Burak DL, Fontes MPF, Santos NT, Monteiro LVS, de Sousa ME, Becquer T (2010) Geochemistry and spatial distribution of heavy metals in Oxisols in a mineralized region of the Brazilian Central Plateau. Geoderma 160:131–142

    Article  CAS  Google Scholar 

  • Dadova J, Andras P, Kupka J, Krnac J, Andras PJ, Hroncova H, Midula P (2015) Mercury contamination from historical mining territory at Malachov Hg-deposit (Central Slovakia). Environ Sci Pollut Res. doi:10.1007/s11356-015-5527-y

    Google Scholar 

  • Dai Z, Feng X, Zhang C, Wang J, Jiang T, Xiao H, Li Y, Wang X, Qiu G (2013) Assessing anthropogenic sources of mercury in soil in Wanshan Hg mining area, Guizhou, China. Environ Sci Pollut Res 20:7560–7569

    Article  CAS  Google Scholar 

  • Dell Inc. (2015) STATISTICA (data analysis software system), version 12. www.statsoft.com

  • Domagalski J (2001) Mercury and methylmercury in water and sediment of the Sacramento River Basin, California. Appl Geochem 16:1677–1691

    Article  CAS  Google Scholar 

  • He F, Gao J, Pierce E, Strong PJ, Wang H, Liang L (2015) In situ remediation technologies for mercury-contaminated soil. Environ Sci Pollut Res 22:8124–8147

    Article  CAS  Google Scholar 

  • Hooda P (ed) (2010) Trace elements in soils. Wiley-Blackwell Ltd., Chichester, pp. 501–502

  • Hrnjak I, Lukic T, Gavrilov MB, Markovic SB, Unkasevic M, Tosic I (2014) Aridity in Vojvodina, Serbia. Theor Appl Climatol 115:323–332

    Article  Google Scholar 

  • ISO 10390 (2010) Soil quality—determination of pH. International Organization for Standardization, Genève

    Google Scholar 

  • ISO 10693 (1995) Soil quality–determination of carbonate content–volumetric method. International Organization for Standardization, Genève

    Google Scholar 

  • ISO 11464 (2006) Soil quality — pretreatment of samples for Physico-chemical analysis. International Organization for Standardization, Genève

    Google Scholar 

  • ISO 14235 (1998) Soil quality — determination of organic carbon by sulfochromic oxidation. International Organization for Standardization, Genève

    Google Scholar 

  • ISO/IEC 17025 (2005) General requirements for the competence of testing and calibration laboratories. International Organization for Standardization and International Electrotechnical Commission, Genève

    Google Scholar 

  • Kabata-Pendias A, Pendias H (2001) Trace elements in soils and plants, 3rd edn. CRS Press LLC, pp 173–176

  • Krasinska G, Falandysz J (2015) Mercury in Orange Birch Bolete Leccinum versipelle and soil substratum: bio-concentration by mushroom and probable dietary intake by consumers. Environ Sci Pollut Res. doi:10.1007/s11356-015-5331-8

    Google Scholar 

  • Leterme B, Blanc P, Jacques D (2014) A reactive transport model for mercury fate in soil—application to different anthropogenic pollution sources. Environ Sci Pollut Res 21:12279–12293

    Article  CAS  Google Scholar 

  • Leterme B, Jacques D (2015) A reactive transport model for mercury fate in contaminated soil—sensitivity analysis. Environ Sci Pollut Res 22:16830–16842

    Article  CAS  Google Scholar 

  • Li WC, Tse HF (2015) Health risk and significance of mercury in the environment. Environ Sci Pollut Res 22:192–201

    Article  CAS  Google Scholar 

  • Liu J, Feng X, Zhu W, Zhang X, Yin R (2012) Spatial distribution and speciation of mercury and methyl mercury in the surface water of East River (Dongjiang) tributary of Pearl River Delta, South China. Environ Sci Pollut Res 19:105–112

    Article  CAS  Google Scholar 

  • Luo W, Lu Y, Wang B, Tong X, Wang G, Shi Y, Wang T, Giesy JP (2008) Distribution and sources of mercury in soils from former industrialized urban areas of Beijing, China. Environ Monit Assess. doi:10.1007/s10661-008-0600-3

    Google Scholar 

  • Maanan M, Landesman C, Maanan M, Zourarah B, Fattal P, Sahabi M (2013) Evaluation of the anthropogenic influx of metal and metalloid contaminants into the Moulay Bousselham lagoon, Morocco, using chemometric methods coupled to geographical information systems. Environ Sci Pollut Res 20:4729–4741

    Article  CAS  Google Scholar 

  • Markovic SB, Bokhorst M, Vandenberghe J, Oches EA, Zoller L, McCoy WD, Gaudenyi T, Jovanovic M, Hambach U, Machalett B (2008) Late Pleistocene loess-paleosol sequences in the Vojvodina region, North Serbia. J Quat Sci 23:73–84

    Article  Google Scholar 

  • Mihailovic A, Budinski-Petkovic LJ, Popov S, Ninkov J, Vasin J, Ralevic NM, Vucinic Vasic M (2014) Spatial distribution of metals in urban soil of Novi Sad, Serbia; GIS based approach. J Geochem Explor 150:104–114

    Article  Google Scholar 

  • Odumo BO, Carbonell G, Angeyo HK, Patel JP, Torrijos M, Rodriguez Martin JA (2014) Impact of gold mining associated with mercury contamination in soil, biota sediments and tailings in Kenya. Environ Sci Pollut Res 21:12426–12435

    Article  CAS  Google Scholar 

  • OG RS 23/94 (1994) Official Gazzette of the Republic of Serbia. RS No. 23/1994. Act on allowable concentrations of hazardous and harmful substances in soil and irrigation water (in Serbian)

  • Ordonez A, Alvarez R, Loredo J (2013) Asturian mercury mining district (Spain) and the environment: a review. Environ Sci Pollut Res 20:7490–7508

    Article  CAS  Google Scholar 

  • Ottesen RT, Birke M, Finne TE, Gosar M, Locutura J, Reimann C, Tarvainen T (2013) Mercury in European agricultural and grazing land soils. Appl Geochem 33:1–12

    Article  CAS  Google Scholar 

  • Popov D, Vandenberghe DAG, Marković SB (2012) Luminescence dating of fluvial deposits in Vojvodina, N Serbia: first results. Quat Geochronol 13:42–51

    Article  Google Scholar 

  • Reimann C, Garrett RG (2005) Geochemical background—concept and reality. Sci Total Environ 350:12–27

    Article  CAS  Google Scholar 

  • Rodriguez Martin JA, Carbonell G, Nanos N, Gutierrez C (2013) Source identification of soil mercury in the Spanish Islands. Arch Environ Contam Toxicol 64:171–179

    Article  CAS  Google Scholar 

  • Rodriguez Martin JA, Carbonell Martin G, Lopez Arias M, Grau Corbi JM (2009) Mercury content in topsoils, and geostatistical methods to identify anthropogenic input in the Ebro basin (Spain). Span J Agric Res 7(1):107–118

    Article  Google Scholar 

  • Rodriguez Martin JA, Nanos N, Grigoratos T, Carbonell G, Samara C (2014) Local deposition of mercury in topsoils around coal-fired power plants: is it always true? Environ Sci Pollut Res 21:10205–10214

    Article  CAS  Google Scholar 

  • Roulet M, Lucotte M, Saint-Aubin A, Tran S, Rheault I, Farella N, De Jesus Da silva E, Dezencourt J, Sousa Passos C-J, Santos Soares G, Guimaraes J-RD, Mergler D, Amorim M (1998) The geochemistry of mercury in central Amazonian soils developed on the Alter-do-Chao formation of the lower Tapajos River Valley, Para state, Brazil. Sci Total Environ 223:1–24

    Article  CAS  Google Scholar 

  • Saba M, Falandysz J, Nnorom IC (2015) Accumulation and distribution of mercury in fruiting bodies by fungus Suillus luteus foraged in Poland. Belarus and Sweden Environ Sci Pollut Res. doi:10.1007/s11356-015-5513-4

    Google Scholar 

  • Sekulic P, Ninkov J, Zeremski-Skoric T, Vasin J, Milić S, Lazić N, Vujic B (2011) Monitoring quality of Vojvodina soils. JRC Scientific and Technical Reports EUR 24889 EN—2011: soil protection activities and soil quality monitoring in South Estern Europe, pp 119–126

  • Shan Y, Tysklind M, Hao F, Ouyang W, Chen S, Lin C (2013) Identification of sources of heavy metals in agricultural soils using multivariate analysis and GIS. J Soils Sediments 13:720–729

    Article  CAS  Google Scholar 

  • Shi J-B, Meng M, Shao J-J, Zhang K-G, Zhang Q-H, Jiang G-B (2013) Spatial distribution of mercury in topsoil from five regions of China. Environ Sci Pollut Res 20:1756–1761

    Article  CAS  Google Scholar 

  • Skoric A, Filipovski G, Ciric M (1985) Soil classification of Yugoslavia. Klasifikacija zemljista Jugoslavije. Akademija nauka i umjetnosti Bosne i Hercegovine. Posebna izdanja. knjiga LXXVIII. Sarajevo (in Serbian)

  • STAT. YEARB. SERB (2015) Statistical yearbook of the Republic of Serbia. Statistical office of the Republic of Serbia

  • Tang R, Wang H, Luo J, Sun S, Gong Y, She J, Chen Y, Dandan Y, Zhou J (2015) Spatial distribution and temporal trends of mercury and arsenic in remote timberline coniferous forests. Eastern of the Tibet Plateau, China. Environ Sci Pollut Res 22:11658–11668

    Article  CAS  Google Scholar 

  • Tosic I, Hrnjak I, Gavrilov MB, Unkasevic M, Markovic SB, Lukic T (2014) Annual and seasonal variability of precipitation in Vojvodina, Serbia. Theor Appl Climatol 117:331–341

    Article  Google Scholar 

  • Yuan G-L, Sun T-H, Han P, Jun L, Lang X-X (2014) Source identification and ecological risk assessment of heavy metals in topsoil using environmental geochemical mapping: typical urban renewal area in Beijing, China. J Geochem Explor 136:40–47

    Article  CAS  Google Scholar 

  • Zhang C, Jordan C, Higgins A (2007) Using neighbourhood statistics and GIS to quantify and visualise spatial variation in geochemical variables: an example using Ni concentartions in the topsoils of Northern Ireland. Geoderma 137:466–476

    Article  CAS  Google Scholar 

  • Zhou J, Liu H, Du B, Shang L, Yang J, Wang Y (2015) Influence of soil mercury concentration and fraction on bioaccumulation process of inorganic mercury and methylmercury in rice (Oryza sativa L.). Environ Sci Pollut Res 22:6144–6154

    Article  CAS  Google Scholar 

Download references

Acknowledgments

This study was conducted as part of the Project No. TR 31072: “Status, trends and possibilities to increase the fertility of agricultural land in the Vojvodina Province”, which is supported by the Ministry of Education and Science of the Republic of Serbia.

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Correspondence to Jordana Ninkov.

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Ninkov, J., Marković, S., Banjac, D. et al. Mercury content in agricultural soils (Vojvodina Province, Serbia). Environ Sci Pollut Res 24, 10966–10975 (2017). https://doi.org/10.1007/s11356-016-7897-1

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