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Arsenic redistributive accretion in interdune marshes and its impact on groundwater contamination of coastal plains (southern Brazil)

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Abstract

Excessive concentrations of arsenic in aquifers have been presented for the first time in the southern Brazilian coastal plain. In this region, the shallow aquifers are mainly constituted by a mosaic distribution of marsh sediment lenses formed in the interdune depressions in past times and subsequently covered by eolian sands. The stratigraphic descriptions and analytical determinations in water (pH, conductivity, As) and sediment (organic carbon, As, Fe, Mn) were obtained in samples of an interdune freshwater marsh, an aquifer (a palaeo-freshwater marsh), and a modern eolic dune. Principal component analysis was applied to summarize the process of As immobilization. In sediments of the modern interdune marshes and under suboxic conditions, As is mobilized from the eolic sands and its redistribution occurs along sediment profile. Its maximum concentration (up to 1.7 mg kg−1 dw) occurred at the marsh’s sediments surface and was strongly coupled to Fe hydroxides. In pore water of marshes, As has been registered up to 79 µg L−1. This enrichment was driven by reductive dissolution of As-bearing Fe hydroxides in sediments, where the reduced environment has allowed their desorption from solids as Fe(II) and As(III) reduction. After the cover of the interdune marshes by eolic sands, turning them into current aquifers, the high As contents have been maintained above the sanitary limit of 10 μg L−1 for drinking water in groundwaters. The southern Brazilian coastal plain is probably an area with arsenic contamination problem for groundwater, which deserves more attention when it is used for drinking supply.

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References

  • Alexakis D (2011) Diagnosis of stream sediment quality and assessment of toxic element contamination sources in East Attica, Greece. Environ Earth Sci 63:1369–1383

    Article  Google Scholar 

  • Alexakis D, Gamvroula D (2014) Arsenic, chromium, and other potentially toxic elements in the rocks and sediments of Oropos-Kalamos basin, Attica. Greece. Appl Environ Soil Sci 2014:718534. https://doi.org/10.1155/2014/718534

    Article  Google Scholar 

  • Andrejko MJ, Fiene F, Cohen AD (1983) Comparison of ashing techniques for determination of the inorganic content of peats. In: Jarret PM (ed) Testing of peats and organic soils. American Society for Testing and Materials, Philadelphia, pp 5–20

    Chapter  Google Scholar 

  • Barboza EG, Rosa MLCC, Ayup-Zouain RN (2008) Cronoestratigrafia da Bacia de Pelotas: uma revisão das sequências deposicionais. Gravel 6(1):125–138

    Google Scholar 

  • Bartlett MS (1937) Properties of sufficiency and statistical tests. Proc R Soc A Math Phys 160:268–282

    Article  Google Scholar 

  • Bhattacharya P, Chatterjee D, Jacks G (1997) Occurrence of arsenic-contaminated groundwater in alluvial aquifers from delta plains, eastern India: options for safe drinking water supply. Int J Water Resour D 13:79–92

    Article  Google Scholar 

  • Bhattacharya P, Jacks G, Ahmed KM, Routh J, Khan AA (2002) Arsenic in groundwater of the Bengal delta plain aquifers in Bangladesh. Bull Environ Contam Toxicol 69:538–545

    Article  Google Scholar 

  • Bhattacharya P, Hasan MA, Sracek O, Smith E, Ahmed KM, von Brömssen M, Huq SM, Naidu R (2009) Groundwater chemistry and arsenic mobilization in the Holocene flood plains in south-central Bangladesh. Environ Geochem Health 31:23–43

    Article  Google Scholar 

  • Bone SE, Gonneea ME, Charette MA (2006) Geochemical cycling of arsenic in a coastal aquifer. Environ Sci Technol 40:3273–3278

    Article  Google Scholar 

  • Borba RP, Figueiredo BR, Matschullat J (2003) Geochemical distribution of arsenic in waters, sediments and weathered gold mineralized rocks from Iron Quadrangle, Brazil. Environ Geol 4:39–52

    Article  Google Scholar 

  • Broder T, Biester H (2015) Hydrologic controls on DOC, As and Pb export from a polluted peatland—the importance of heavy rain events, antecedent moisture conditions and hydrological connectivity. Biogeosciences 12:4651–4664

    Article  Google Scholar 

  • Buchmann FSC, Caron F, Lopes RP, Ugri A, de Lima LG (2009) Panorama geológico da Planície Costeira do Rio Grande do Sul. In: Ribeiro AM, Bauermann SG, Scherer CS (eds) Quaternário do Rio Grande do Sul. Grafica Palloti, Porto Alegre, pp 35–56

    Google Scholar 

  • Bundschuh J, Litter MI, Parvez F, Román-Ross G, Nicolli HB, Jean J-S, Liu C-H, López D, Armienta MA, Guilherme LRG, Cuevas AG, Cornejo L, Cumbal L, Toujaguez R (2012) One century of arsenic exposure in Latin America: a review of history and occurrence from 14 countries. Sci Total Environ 429:2–35

    Article  Google Scholar 

  • Caetano M, Vale V (2002) Retention of arsenic and phosphorus in iron-rich concretions of Tagus salt marshes. Mar Chem 79:261–271

    Article  Google Scholar 

  • Casartelli MR, Mirlean N, Peralba MC, Barrionuevo S, Gómez-Rey MX, Madeira M (2008) An assessment of the chemical composition of precipitation and throughfall in rural-industrial gradient in wet subtropics (southern Brazil). Environ Monit Assess 144:105–116

    Article  Google Scholar 

  • Chaillou G, Schafer J, Pierre Anschutz P, Lavaux G, Blanc G (2003) The behaviour of arsenic in muddy sediments of The Bay of Biscay (France). Geochim Cosmochim Acta 67:2993–3003

    Article  Google Scholar 

  • Cloy JM, Farmer JG, Graham MC, Mackenzie AB (2009) Retention of As and Sb in ombrotrophic peat bogs: records of As, Sb, and Pb deposition at four Scottish sites. Environ Sci Technol 43:1756–1762

    Article  Google Scholar 

  • Das D, Chatterjee A, Mandal BK, Samanta G, Chakraborti D, Chanda B (1995) Arsenic in groundwater in six districts of West Bengal, India: the biggest arsenic calamity in the world. Part 2. Arsenic concentration in drinking water, hair, nails, urine, skin-scale and liver tissue (biopsy) of the affected people. Analyst 120:917–924

    Article  Google Scholar 

  • Datta S, Johannesson KH, Mladenov MS, Sankar MS, Ford S, Vega M, Neal A, Kibria MD, Krehel A, Hettiarachchi G (2014) Groundwater-sediment sorption mechanisms and role of organic matter in controlling arsenic release into aquifer sediments of Murshidabad area (Bengal basin) India. In: Litter MI, Nicolli HB, Meichtry M, Quici N, Bundschuh J, Bhattacharya P, Naidu R (eds) One century of the discovery of arsenicosis in Latin America (1914–2014). Taylor & Francis, London, pp 95–97

    Chapter  Google Scholar 

  • de Figueiredo BR, Borba RP, Angélica RS (2007) Arsenic occurence in Brazil and human exposure. Environ Geochem Health 29:109–118

    Article  Google Scholar 

  • Deng T, Wu Y, Yu X, Guo Y, Chen YW, Belzile N (2014) Seasonal variations of arsenic at the sediment–water interface of Poyang Lake, China. Appl Geochem 47:170–176

    Article  Google Scholar 

  • Dhar RK, Biswas BK, Samanta G, Mandal BK, Chakraborti D, Roy S, Jafar A, Islam A, Ara G, Kabir S, Khan AW, Ahmed SA, Hadi SA (1997) Groundwater arsenic calamity in Bangladesh. Curr Sci 73:48–59

    Google Scholar 

  • Diwakar J, Johnston SG, Burton ED, Shrestha SD (2015) Arsenic mobilization in an alluvial aquifer of the Terai region. Nepal. J Hydrol Reg Stud 4(A):59–79

    Article  Google Scholar 

  • Edmunds WM, Cook JM, Kinniburgh DG, Miles DL, Trafford JM (1989) Trace-element occurrence in British groundwaters. Res. Report SD/89/3. British Geological Survey, Keyworth

    Google Scholar 

  • Embrapa-Empresa Brasileira de Pesquisa Agropecuária (2018) Sistema Brasileiro de Classificação de Solos, 5th edn. Embrapa Solos, Rio de Janeiro

    Google Scholar 

  • Eriksson L, Johansson E, Kettaneh-Wold N, Wold S (1999) Introduction to multi- and megavariate data analysis using projection methods (PCA & PLS). Umetrics AB, Umea

    Google Scholar 

  • FAO-Food and Agriculture Organization (2006) Guidelines for soil description, 4th edn. Management Service, Rome

    Google Scholar 

  • Gamvroula D, Alexakis D, Stamatis G (2013) Diagnosis of groundwater quality and assessment of contamination sources in the Megara basin (Attica, Greece). Arab J Geosci 6:2367–2381

    Article  Google Scholar 

  • Goldin A (1987) Reassessing the use of loss-on-ignition for estimating organic matter content in noncalcareous soils. Commun Soil Sci Plan 18:1111–1116

    Article  Google Scholar 

  • Guo H, Zhang B, Li Y, Berner Z, Tang X, Norra S, Stüben D (2011) Hydrogeological and biogeochemical constrains of arsenic mobiliz ation in shallow aquifers from the Hetao basin, Inner Mongolia. Environ Pollut 159:876–883

    Article  Google Scholar 

  • Hoque MA, McArthur JM, Sikdar PK (2012) The palaeosol model of arsenic pollution of groundwater tested along a 32 km traverse across West Bengal, India. Sci Total Environ 43:157–165

    Article  Google Scholar 

  • IUPAC (1994) Analytical methods committee. Analyst 119:16–32

    Google Scholar 

  • Johannesson KH, Tang J (2009) Conservative behavior of arsenic and other oxyanion-forming trace elements in an oxic groundwater flow system. J Hydrol 378:13–28

    Article  Google Scholar 

  • Kaiser H (1974) An index of factor simplicity. Psychometrika 39:31–36

    Article  Google Scholar 

  • Kumar A, Adak P, Gurian PL, Lockwood JR (2010) Arsenic exposure in US public and domestic drinking water supplies: a comparative risk assessment. J Expo Sci Environ Epidemol 20:245–254

    Article  Google Scholar 

  • Küttner A, Mighall TM, De Vleeschouwer F, Mauquoy D, Martínez Cortizas A, Foster IDL, Krupp E (2014) A 3300-year atmospheric metal contamination record from Raeburn flow raised bog, south west Scotland. J Archaeol Sci 44:1–11

    Article  Google Scholar 

  • Leal-Acosta L, Shumilin E, Mirlean N, Sapozshnikov D, Gordeev V (2010) Arsenic and mercury contamination of sediments of geothermal springs, Mangrove Lagoon and the Santispac Bight, Bahia Concepcion, Baja California Peninsula. B Environ Contam Toxicol 85:609–613

    Article  Google Scholar 

  • Lin HJ, Sung TI, Chen CY, Guo HR (2013) Arsenic levels in drinking water and mortality of liver cancer in Taiwan. J Hazard Mater 262:1132–1138

    Article  Google Scholar 

  • Lynn WC, McKinzie WE, Grossman RB (1974) Field laboratory tests for characterization of Histosols. In: Aandahl AR, Buol SW, Hill DE, Bailey HH (eds) Histosols: their characteristics, classification and use. Soil Science Society of America Journal, Madison, pp 11–20

    Google Scholar 

  • Madejón P, Lepp NW (2007) Arsenic in soils and plants of woodland regenerated on an arsenic contaminated substrate: a sustainable natural remediation? Sci Total Environ 379:256–262

    Article  Google Scholar 

  • Mirlean N, Vanz A, Baisch P (2000) Sources and levels of rain acidity in the region of the Rio Grande City, RS, Brazil. Quím Nova 23:590–593

    Article  Google Scholar 

  • Mirlean N, Medeanic S, Garcia FA, Travassos MP, Baisch P (2012) Arsenic enrichment in shelf and coastal sediment of the Brazilian subtropics. Cont Shelf Res 35:129–136

    Article  Google Scholar 

  • Mirlean A, Baisch P, Diniz D (2014) Arsenic in groundwater of the Paraiba do Sul delta, Brazil: an atmospheric source? Sci Total Environ 482–483:148–156

    Article  Google Scholar 

  • Morton WE, Dunette DA (1994) Health effect of environmental arsenic. In: Nriagu JO (ed) Arsenic in the environment, part II: human and ecosystem effects. Wiley, New York, pp 17–34

    Google Scholar 

  • Nickson RT, McArthur JM, Burgess WG, Ahmed KM, Ravenscroft P, Rahman M (1998) Arsenic poisoning of Bangladesh groundwater. Nature 395:338

    Article  Google Scholar 

  • Nickson RT, McArthur JM, Shrestha B, Kyaw-Myint TO, Lowry D (2005) Arsenic and other drinking water quality issues, Muzaffargarh District, Pakistan. Appl Geochem 20:55–68

    Article  Google Scholar 

  • Polizzotto ML, Kocar BD, Benner SG, Sampson M, Fendorf S (2008) Near-surface wetland sediments as a source of arsenic release to ground water in Asia. Nature 454:505–508

    Article  Google Scholar 

  • Recio-Vazquez L, Garcia-Guinea J, Carral P, Alvarez AM, Garrido F (2011) Arsenic mining waste in the catchment area of the Madrid Detrital Aquifer (Spain). Water Air Soil Pollut 214:307–320

    Article  Google Scholar 

  • Reimann C, Filzmoser P, Garrett R, Dutter R (2008) Statistical data analysis explained: applied environmental statistics with R. Wiley, Chichester

    Book  Google Scholar 

  • Reimann C, Matschullat J, Birke M, Salminen R (2009) Arsenic distribution in the environment: the effects of scale. Appl Geochem 24:1147–1167

    Article  Google Scholar 

  • Rodríguez-Lado L, Sun G, Berg M, Zhang Q, Xue H, Zheng Q, Johnson CA (2013) Groundwater arsenic contamination throughout China. Science 341:866–867

    Article  Google Scholar 

  • Schoeneberger PJ, Wysocki DA, Benham EC, Staff Soil Survey (2012) Field book for describing and sampling soils, Version 3.0. Natural Resources Conservation Service, USDA, National Soil Survey Center, Lincoln

    Google Scholar 

  • Siewers U (1994) The geochemical atlas of Finland—part 2: till. In: Koljonen T (ed) Chemical geology. Geological Survey of Finland, Espoo, pp 377–378

    Google Scholar 

  • Smedley PL, Kinniburgh DG (2002) A review of the source, behavior and distribution of arsenic in natural waters. Appl Geochem 17:517–568

    Article  Google Scholar 

  • Smith A, Goycolea M, Haque R, Biggs ML (1998) Marked increase in bladder and lung cancer mortality in a region of Northern Chile due to arsenic in drinking water. Am J Epidemiol 147:660–669

    Article  Google Scholar 

  • Sullivan KA, Aller RC (1996) Diagenetic cycling of arsenic in Amazon shelf sediments. Geochim Cosmochim Acta 60:1465–1477

    Article  Google Scholar 

  • Tomazelli LJ, Villwock JA (2005) Mapeamento Geológico de Planícies Costeiras: o Exemplo da Costa do Rio Grande do Sul. Gravel 3:109–115

    Google Scholar 

  • Ukonmaanaho L, Nieminen TM, Rausch N, Shotyk W (2004) Heavy metal and arsenic profiles in ombrogenous peat cores from four differently loaded areas in Finland. Water Air Soil Poll 158:277–294

    Article  Google Scholar 

  • Wang Y, Zhou L, Zheng X, Qian P, Wu Y (2012) Dynamics of arsenic in salt marsh sediments from Dongtan wetland of the Yangtze River estuary. J Environ Sci 24:2113–2121

    Article  Google Scholar 

  • Wedepohl KH (1995) The composition of the continental crust. Geochim Cosmochim Acta 59:1217–1232

    Article  Google Scholar 

  • Welch AH, Westjohn DB, Helsel DR, Wanty RB (2000) Arsenic in ground water of the United States: occurrence and geochemistry. Ground Water 38:589–604

    Article  Google Scholar 

  • Widerlund A, Ingri J (1995) Early diagenesis of arsenic in sediments of the Kalix River estuary, northern Sweden. Chem Geol 125:185–196

    Article  Google Scholar 

  • World Health Organization (2011) Guidelines for drinking-water quality, 4 edn. http://www.who.int/water_sanitation_health/publications/2011/dwq_guidelines/en. Accessed 25 Oct 2018

  • Yang N, Winkel LHE, Johannesson KH (2014) Predicting geogenic arsenic contamination in shallow groundwater of South Louisiana, United States. Environ Sci Technol 48:5660–5666

    Article  Google Scholar 

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Acknowledgements

The research was funded by Coordination for the Improvement of Higher Education Personnel (grant to I.H.T—post doctoral scholarship PNPD/CAPES) and National Council for Scientific and Technological Development (CNPq)/Brazil (grant to A.F—graduation scholarship PIBIC/CNPq 137792/2016-6). We are grateful to Carlos Francisco Ferreira de Andrade (Federal University of Rio Grande) for lending of the pushpoint sampler.

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Correspondence to Ingrid Horák-Terra.

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Horák-Terra, I., Mirlean, N. & Ferraz, A.H. Arsenic redistributive accretion in interdune marshes and its impact on groundwater contamination of coastal plains (southern Brazil). Environ Earth Sci 78, 515 (2019). https://doi.org/10.1007/s12665-019-8531-6

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