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International Journal Of Chemistry, Mathematics And Physics(IJCMP)

Arsenic contamination in groundwater sources: Geochemical transformations, health hazards, toxicity and sustainable remediation technologies

Debabrata Saha


International Journal of Chemistry, Mathematics And Physics(IJCMP), Vol-4,Issue-1, January - February 2020, Pages 18-25 , 10.22161/ijcmp.4.1.4

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Arsenic contamination of groundwater represents one of the most significant geogenic and anthropogenic environmental health challenges of the modern era. Naturally occurring Arsenic, released through complex geochemical processes involving reductive dissolution of iron oxyhydroxides, oxidative weathering of sulfide minerals, and desorption under alkaline conditions, affects aquifers across Asia, the Americas, and parts of Europe and Africa. Chronic exposure via drinking water leads to Arsenicosis, characterized by skin lesions, cardiovascular disease, neurological impairment, and elevated risks of cancers of the skin, bladder, lung, and other organs. Toxicity is driven primarily by the greater mobility and cellular reactivity of arsenite (As(III)) relative to arsenate (As(V)), involving disruption of enzyme systems, generation of reactive oxygen species, interference with DNA repair, and epigenetic alterations. Regional comparisons reveal extreme contamination in the Bengal Basin (Bangladesh and West Bengal, India), the Red River and Mekong deltas, the Pampa plain of Argentina, and parts of China and the western United States, with concentrations frequently exceeding the World Health Organization guideline of 10 µg/L by one to two orders of magnitude. Sustainable remediation approaches encompass oxidation-coagulation-filtration, adsorption onto iron-based media, ion exchange, membrane processes, and emerging biological and hybrid technologies. This review synthesizes geochemical controls, health and toxicity mechanisms, regional patterns, and technology performance, emphasizing the need for context-specific, low-cost, and environmentally sound solutions that minimize secondary waste and support long-term water security.

Arsenic, groundwater, geochemistry, speciation, Arsenicosis, toxicity, remediation, adsorption, oxidation, sustainable technologies

[1] Smedley, P. L., & Kinniburgh, D. G. (2002). A review of the source, behaviour and distribution of Arsenic in natural waters. Applied Geochemistry, 17(5), 517–568.
[2] Nickson, R., McArthur, J., Burgess, W., Ahmed, K. M., Ravenscroft, P., & Rahman, M. (1998). Arsenic poisoning of Bangladesh groundwater. Nature, 395(6700), 338.
[3] Chowdhury, U. K., Biswas, B. K., Chowdhury, T. R., Samanta, G., Mandal, B. K., Basu, G. C., ... & Chakraborti, D. (2000). Groundwater Arsenic contamination in Bangladesh and West Bengal, India. Environmental Health Perspectives, 108(5), 393–397.
[4] Berg, M., Tran, H. C., Nguyen, T. C., Pham, H. V., Schertenleib, R., & Giger, W. (2001). Arsenic contamination of groundwater and drinking water in Vietnam: A human health threat. Environmental Science & Technology, 35(13), 2621–2626.
[5] Bundschuh, J., Farias, B., Martin, R., Storniolo, A., Bhattacharya, P., Cortes, J., ... & Albouy, R. (2004). Groundwater Arsenic in the Chaco-Pampean Plain, Argentina: Case study from Robles county, Santiago del Estero Province. Applied Geochemistry, 19(2), 231–243.
[6] Welch, A. H., Westjohn, D. B., Helsel, D. R., & Wanty, R. B. (2000). Arsenic in ground water of the United States: Occurrence and geochemistry. Ground Water, 38(4), 589–604.
[7] World Health Organization. (2011). Guidelines for drinking-water quality (4th ed.). World Health Organization.
[8] Ravenscroft, P., Brammer, H., & Richards, K. (2009). Arsenic pollution: A global synthesis. Wiley-Blackwell.
[9] Rodríguez-Lado, L., Sun, G., Berg, M., Zhang, Q., Xue, H., Zheng, Q., & Johnson, C. A. (2013). Groundwater Arsenic contamination throughout China. Science, 341(6148), 866–868.
[10] Cullen, W. R., & Reimer, K. J. (1989). Arsenic speciation in the environment. Chemical Reviews, 89(4), 713–764.
[11] Nickson, R. T., McArthur, J. M., Ravenscroft, P., Burgess, W. G., & Ahmed, K. M. (2000). Mechanism of Arsenic release to groundwater, Bangladesh and West Bengal. Applied Geochemistry, 15(4), 403–413.
[12] McArthur, J. M., Ravenscroft, P., Safiulla, S., & Thirlwall, M. F. (2001). Arsenic in groundwater: Testing pollution mechanisms for sedimentary aquifers in Bangladesh. Water Resources Research, 37(1), 109–117.
[13] Fendorf, S., Michael, H. A., & van Geen, A. (2010). Spatial and temporal variations of groundwater Arsenic in South and Southeast Asia. Science, 328(5982), 1123–1127.
[14] Harvey, C. F., Swartz, C. H., Badruzzaman, A. B. M., Keon-Blute, N., Yu, W., Ali, M. A., ... & Ahmed, M. F. (2002). Arsenic mobility and groundwater extraction in Bangladesh. Science, 298(5598), 1602–1606.
[15] van Geen, A., Zheng, Y., Versteeg, R., Stute, M., Horneman, A., Dhar, R., ... & Ahmed, K. M. (2003). Spatial variability of Arsenic in 6000 tube wells of a 25 km² area of Bangladesh. Water Resources Research, 39(5), 1140.
[16] Appelo, C. A. J., Van Der Weiden, M. J. J., Tournassat, C., & Charlet, L. (2002). Surface complexation of ferrous iron and carbonate on ferrihydrite and the mobilization of Arsenic. Environmental Science & Technology, 36(14), 3096–3103.
[17] Dixit, S., & Hering, J. G. (2003). Comparison of Arsenic(V) and Arsenic(III) sorption onto iron oxide minerals: Implications for Arsenic mobility. Environmental Science & Technology, 37(18), 4182–4189.
[18] Bhattacharya, P., Frisbie, S. H., Smith, E., Naidu, R., Jacks, G., & Sarkar, B. (2002). Arsenic in the environment: A global perspective. In Handbook of heavy metals in the environment (pp. 147–215). Marcel Dekker.
[19] Stüben, D., Berner, Z., Chandrasekharam, D., & Karmakar, J. (2003). Arsenic enrichment in groundwater of West Bengal, India: Geochemical evidence for mobilization of As under reducing conditions. Applied Geochemistry, 18(9), 1417–1434.
[20] Smedley, P. L., Nicolli, H. B., Macdonald, D. M. J., Barros, A. J., & Tullio, J. O. (2002). Hydrogeochemistry of Arsenic and other inorganic constituents in groundwaters from La Pampa, Argentina. Applied Geochemistry, 17(3), 259–284.
[21] Romero, L., Alonso, H., Campano, P., Fanfani, L., Cidu, R., Dadea, C., ... & Nicholson, K. (2003). Arsenic enrichment in waters and sediments of the Rio Loa (Second Region, Chile). Applied Geochemistry, 18(9), 1399–1416.
[22] Postma, D., Larsen, F., Hue, N. T. M., Duc, M. T., Viet, P. H., Nhan, P. Q., & Jessen, S. (2007). Arsenic in groundwater of the Red River floodplain, Vietnam: Controlling mechanisms and variation with time. Geochimica et Cosmochimica Acta, 71(21), 5054–5071.
[23] Guo, H., Wang, Y., Shpeizer, G. M., & Yan, S. (2003). Natural occurrence of Arsenic in shallow groundwater, Shanyin, Datong Basin, China. Journal of Environmental Science and Health, Part A, 38(11), 2565–2580.
[24] Deng, Y., Wang, Y., Ma, T., & Gan, Y. (2009). Speciation and enrichment of Arsenic in strongly reducing groundwater at western Hetao Plain, northern China. Environmental Geology, 56(7), 1467–1477.
[25] Focazio, M. J., Welch, A. H., Watkins, S. A., Helsel, D. R., & Horn, M. A. (2000). A retrospective analysis on the occurrence of Arsenic in ground-water resources of the United States and limitations in drinking-water-supply characterizations. U.S. Geological Survey Water-Resources Investigations Report 99-4279.
[26] Oremland, R. S., & Stolz, J. F. (2003). The ecology of Arsenic. Science, 300(5621), 939–944.
[27] Islam, F. S., Gault, A. G., Boothman, C., Polya, D. A., Charnock, J. M., Chatterjee, D., & Lloyd, J. R. (2004). Role of metal-reducing bacteria in Arsenic release from Bengal delta sediments. Nature, 430(6995), 68–71.
[28] Kirk, M. F., Holm, T. R., Park, J., Jin, Q., Sanford, R. A., Johnson, T. M., & Bethke, C. M. (2004). Bacterial sulfate reduction limits natural Arsenic contamination in groundwater. Geology, 32(11), 953–956.
[29] O’Day, P. A., Vlassopoulos, D., Root, R., & Rivera, N. (2004). The influence of sulfur and iron on dissolved Arsenic concentrations in the shallow subsurface under changing redox conditions. Proceedings of the National Academy of Sciences, 101(38), 13703–13708.
[30] Stachowicz, M., Hiemstra, T., & van Riemsdijk, W. H. (2008). Multi-competitive interaction of As(III) and As(V) oxyanions with Ca²⁺, Mg²⁺, PO₄³⁻, and CO₃²⁻ ions on goethite. Journal of Colloid and Interface Science, 320(2), 400–414.
[31] Ritchie, A. I. M. (1994). Sulfide oxidation mechanisms: Controls and rates of oxygen transport. In C. N. Alpers & D. W. Blowes (Eds.), Environmental geochemistry of sulfide oxidation (ACS Symposium Series). American Chemical Society.
[32] Williams, M. (2001). Arsenic in mine waters: An international study. Environmental Geology, 40(12), 1439–1456.
[33] Basu, A., Saha, D., Saha, R., Ghosh, T., & Saha, B. (2014). A review on sources, toxicity and remediation technologies for removing arsenic from drinking water. Research on Chemical Intermediates, 40(2), 447–485.
[34] Rahman, M. M., Chowdhury, U. K., Mukherjee, S. C., Mondal, B. K., Paul, K., Lodh, D., ... & Chakraborti, D. (2001). Chronic Arsenic toxicity in Bangladesh and West Bengal, India A review and commentary. Journal of Toxicology: Clinical Toxicology, 39(7), 683–700.
[35] Smith, A. H., Hopenhayn-Rich, C., Bates, M. N., Goeden, H. M., Hertz-Picciotto, I., Duggan, H. M., ... & Smith, M. T. (1992). Cancer risks from Arsenic in drinking water. Environmental Health Perspectives, 97, 259–267.
[36] Chen, C. J., Chen, C. W., Wu, M. M., & Kuo, T. L. (1992). Cancer potential in liver, lung, bladder and kidney due to ingested inorganic Arsenic in drinking water. British Journal of Cancer, 66(5), 888–892.
[37] National Research Council. (2001). Arsenic in drinking water: 2001 update. National Academy Press.
[38] Tseng, W. P., Chu, H. M., How, S. W., Fong, J. M., Lin, C. S., & Yeh, S. (1968). Prevalence of skin cancer in an endemic area of chronic Arsenicism in Taiwan. Journal of the National Cancer Institute, 40(3), 453–463.
[39] Chen, C. J., Chiou, H. Y., Chiang, M. H., Lin, L. J., & Tai, T. Y. (1996). Dose-response relationship between ischemic heart disease mortality and long-term Arsenic exposure. Arteriosclerosis, Thrombosis, and Vascular Biology, 16(4), 504–510.
[40] Navas-Acien, A., Sharrett, A. R., Silbergeld, E. K., Schwartz, B. S., Nachman, K. E., Burke, T. A., & Guallar, E. (2005). Arsenic exposure and cardiovascular disease: A systematic review of the epidemiologic evidence. American Journal of Epidemiology, 162(11), 1037–1049.
[41] Wasserman, G. A., Liu, X., Parvez, F., Ahsan, H., Factor-Litvak, P., van Geen, A., ... & Graziano, J. H. (2004). Water Arsenic exposure and children’s intellectual function in Araihazar, Bangladesh. Environmental Health Perspectives, 112(13), 1329–1333.
[42] von Ehrenstein, O. S., Poddar, S., Yuan, Y., Mazumder, D. G., Eskenazi, B., Basu, A., ... & Smith, A. H. (2007). Children’s intellectual function in relation to Arsenic exposure. Epidemiology, 18(1), 44–51.
[43] Ahmad, S. A., Sayed, M. H., Barua, S., Khan, M. H., Faruquee, M. H., Jalil, A., ... & Talukder, H. K. (2001). Arsenic in drinking water and pregnancy outcomes. Environmental Health Perspectives, 109(6), 629–631.
[44] Hopenhayn, C., Ferreccio, C., Browning, S. R., Huang, B., Peralta, C., Gibb, H., & Hertz-Picciotto, I. (2003). Arsenic exposure from drinking water and birth weight. Epidemiology, 14(5), 593–602.
[45] Vahter, M. (2002). Mechanisms of Arsenic biotransformation. Toxicology, 181–182, 211–217.
[46] Steinmaus, C., Yuan, Y., Kalman, D., Rey, O., Skibola, C. F., Dauphine, D., ... & Smith, A. H. (2005). Individual differences in Arsenic metabolism and lung cancer in a case-control study in Cordoba, Argentina. Toxicology and Applied Pharmacology, 206(1), 1–9.
[47] Spallholz, J. E., Boylan, L. M., & Rhaman, M. M. (2004). Environmental hypothesis: Is poor dietary selenium intake an underlying factor for Arsenicosis and cancer in Bangladesh and West Bengal, India? Science of the Total Environment, 323(1–3), 21–32.
[48] Gamble, M. V., Liu, X., Ahsan, H., Pilsner, J. R., Ilievski, V., Slavkovich, V., ... & Graziano, J. H. (2006). Folate and Arsenic metabolism: A double-blind, placebo-controlled folic acid–supplementation trial in Bangladesh. American Journal of Clinical Nutrition, 84(5), 1093–1101.
[49] Smith, A. H., Lingas, E. O., & Rahman, M. (2000). Contamination of drinking-water by Arsenic in Bangladesh: A public health emergency. Bulletin of the World Health Organization, 78(9), 1093–1103.
[50] Argos, M., Kalra, T., Rathouz, P. J., Chen, Y., Pierce, B., Parvez, F., ... & Ahsan, H. (2010). Arsenic exposure from drinking water, and all-cause and chronic-disease mortalities in Bangladesh (HEALS): A prospective cohort study. The Lancet, 376(9737), 252–258.
[51] Smith, A. H., Goycolea, M., Haque, R., & Biggs, M. L. (1998). Marked increase in bladder and lung cancer mortality in a region of Northern Chile due to Arsenic in drinking water. American Journal of Epidemiology, 147(7), 660–669.
[52] Xia, Y., Wade, T. J., Wu, K., Li, Y., Ning, Z., Le, X. C., ... & Mumford, J. L. (2009). Well water Arsenic exposure, Arsenic induced skin lesions and toxicities, and health effects in a Chinese population. Toxicology and Applied Pharmacology, 236(2), 140–148.
[53] Hopenhayn-Rich, C., Biggs, M. L., Fuchs, A., Bergoglio, R., Tello, E. E., Nicolli, H., & Smith, A. H. (1996). Bladder cancer mortality associated with Arsenic in drinking water in Argentina. Epidemiology, 7(2), 117–124.
[54] Bundschuh, J., Litter, M. I., Parvez, F., Román-Ross, G., Nicolli, H. B., Jean, J. S., ... & Toujaguez, R. (2012). One century of Arsenic exposure in Latin America: A review of history and occurrence from 14 countries. Science of the Total Environment, 429, 2–35.
[55] Hughes, M. F. (2002). Arsenic toxicity and potential mechanisms of action. Toxicology Letters, 133(1), 1–16.
[56] Thomas, D. J., Styblo, M., & Lin, S. (2001). The cellular metabolism and systemic toxicity of Arsenic. Toxicology and Applied Pharmacology, 176(2), 127–144.
[57] Aposhian, H. V., & Aposhian, M. M. (2006). Arsenic toxicology: Five questions. Chemical Research in Toxicology, 19(1), 1–15.
[58] Kitchin, K. T., & Ahmad, S. (2003). Oxidative stress as a possible mode of action for Arsenic carcinogenesis. Toxicology Letters, 137(1–2), 3–13.
[59] Shi, H., Shi, X., & Liu, K. J. (2004). Oxidative mechanism of Arsenic toxicity and carcinogenesis. Molecular and Cellular Biochemistry, 255(1–2), 67–78.
[60] Hartwig, A., Blessing, H., Schwerdtle, T., & Walter, I. (2003). Modulation of DNA repair processes by Arsenic and selenium compounds. Toxicology, 193(1–2), 161–169.
[61] Andrew, A. S., Burgess, J. L., Meza, M. M., Demidenko, E., Waugh, M. G., Hamilton, J. W., & Karagas, M. R. (2006). Arsenic exposure is associated with decreased DNA repair in vitro and in individuals exposed to drinking water Arsenic. Environmental Health Perspectives, 114(6), 894–900.
[62] Reichard, J. F., & Puga, A. (2010). Effects of Arsenic exposure on DNA methylation and epigenetic gene regulation. Epigenomics, 2(1), 87–104.
[63] Ren, X., McHale, C. M., Skibola, C. F., Smith, A. H., Smith, M. T., & Zhang, L. (2011). An emerging role for epigenetic dysregulation in Arsenic toxicity and carcinogenesis. Environmental Health Perspectives, 119(1), 11–19.
[64] Styblo, M., Del Razo, L. M., Vega, L., Germolec, D. R., LeCluyse, E. L., Hamilton, G. A., ... & Thomas, D. J. (2000). Comparative toxicity of trivalent and pentavalent inorganic and methylated Arsenicals in rat and human cells. Archives of Toxicology, 74(6), 289–299.
[65] Petrick, J. S., Ayala-Fierro, F., Cullen, W. R., Carter, D. E., & Aposhian, H. V. (2000). Monomethylarsonous acid (MMA(III)) is more toxic than arsenite in Chang human hepatocytes. Toxicology and Applied Pharmacology, 163(2), 203–207.
[66] Dangleben, N. L., Skibola, C. F., & Smith, M. T. (2013). Arsenic immunotoxicity: A review. Environmental Health, 12, 73.
[67] States, J. C., Srivastava, S., Chen, Y., & Barchowsky, A. (2011). Arsenic and cardiovascular disease. Toxicological Sciences, 107(2), 312–323.
[68] British Geological Survey & Department of Public Health Engineering. (2001). Arsenic contamination of groundwater in Bangladesh (Technical Report WC/00/19). British Geological Survey.
[69] Berg, M., Stengel, C., Trang, P. T. K., Viet, P. H., Sampson, M. L., Leng, M., ... & Fredericks, D. (2007). Magnitude of Arsenic pollution in the Mekong and Red River Deltas Cambodia and Vietnam. Science of the Total Environment, 372(2–3), 413–425.
[70] Buschmann, J., Berg, M., Stengel, C., Winkel, L., Sampson, M. L., Trang, P. T. K., & Viet, P. H. (2008). Contamination of drinking water resources in the Mekong delta floodplains: Arsenic and other trace metals pose serious health risks to population. Environment International, 34(6), 756–764.
[71] Guo, H., Yang, S., Tang, X., Li, Y., & Shen, Z. (2008). Groundwater geochemistry and its implications for Arsenic mobilization in shallow aquifers of the Hetao Basin, Inner Mongolia. Science of the Total Environment, 393(1), 131–144.
[72] Ayotte, J. D., Montgomery, D. L., Flanagan, S. M., & Robinson, K. W. (2003). Arsenic in groundwater in eastern New England: Occurrence, controls, and human health implications. Environmental Science & Technology, 37(10), 2075–2083.
[73] U.S. Environmental Protection Agency. (2000). Technologies and costs for removal of Arsenic from drinking water. U.S. Environmental Protection Agency.
[74] Mohan, D., & Pittman, C. U., Jr. (2007). Arsenic removal from water/wastewater using adsorbents A critical review. Journal of Hazardous Materials, 142(1–2), 1–53.
[75] Bissen, M., & Frimmel, F. H. (2003). Arsenic a review. Part II: Oxidation of Arsenic and its removal in water treatment. Acta Hydrochimica et Hydrobiologica, 31(2), 97–107.
[76] Leupin, O. X., & Hug, S. J. (2005). Oxidation and removal of Arsenic(III) from aerated groundwater by filtration through sand and zero-valent iron. Water Research, 39(9), 1729–1740.
[77] Hering, J. G., Chen, P. Y., Wilkie, J. A., & Elimelech, M. (1997). Arsenic removal from drinking water during coagulation. Journal of Environmental Engineering, 123(8), 800–807.
[78] Meng, X., Korfiatis, G. P., Christodoulatos, C., & Bang, S. (2001). Treatment of Arsenic in Bangladesh well water using a household co-precipitation and filtration system. Water Research, 35(12), 2805–2810.
[79] Bang, S., Johnson, M. D., Korfiatis, G. P., & Meng, X. (2005). Chemical reactions between Arsenic and zero-valent iron in water. Water Research, 39(5), 763–770.
[80] Leupin, O. X., Hug, S. J., & Badruzzaman, A. B. M. (2005). Arsenic removal from Bangladesh tube well water with filter columns containing zerovalent iron filings and sand. Environmental Science & Technology, 39(20), 8032–8037.
[81] Mohan, D., & Pittman, C. U., Jr. (2007). Arsenic removal from water/wastewater using adsorbents A critical review. Journal of Hazardous Materials, 142(1–2), 1–53. (Note: same as [74] for consistency in body usage)
[82] Hussam, A., & Munir, A. K. M. (2007). A simple and effective Arsenic filter based on composite iron matrix: Development and deployment studies for groundwater of Bangladesh. Journal of Environmental Science and Health, Part A, 42(12), 1869–1878.
[83] Clifford, D. (1999). Ion exchange and inorganic adsorption. In R. D. Letterman (Ed.), Water quality and treatment (5th ed.). McGraw-Hill.
[84] Uddin, M. T., Mozumder, M. S. I., Figoli, A., Drioli, E., & Islam, M. A. (2007). Arsenic removal by conventional and membrane technology: An overview. Indian Journal of Chemical Technology, 14, 441–450.
[85] Figoli, A., Cassano, A., Criscuoli, A., Mozumder, M. S. I., Uddin, M. T., Islam, M. A., & Drioli, E. (2010). Influence of operating parameters on the Arsenic removal by nanofiltration. Water Research, 44(1), 97–104.
[86] Katsoyiannis, I. A., & Zouboulis, A. I. (2004). Application of biological processes for the removal of Arsenic from groundwaters. Water Research, 38(1), 17–26.
[87] Ma, L. Q., Komar, K. M., Tu, C., Zhang, W., Cai, Y., & Kennelley, E. D. (2001). A fern that hyperaccumulates Arsenic. Nature, 409(6820), 579.
[88] Driehaus, W., Jekel, M., & Hiltl, J. (1998). Granular ferric hydroxide a new adsorbent for the removal of Arsenic from natural water. Journal of Water Supply: Research and Technology AQUA, 47(1), 30–35.
[89] Sperlich, A., Werner, A., Genz, A., Amy, G., Worch, E., & Jekel, M. (2005). Breakthrough behavior of granular ferric hydroxide (GFH) fixed-bed adsorption filters: Modeling and experimental approaches. Water Research, 39(6), 1190–1198.
[90] Singh, T. S., & Pant, K. K. (2004). Equilibrium, kinetics and thermodynamic studies for adsorption of As(III) on activated alumina. Separation and Purification Technology, 36(2), 139–147.
[91] Litter, M. I., Morgada, M. E., & Bundschuh, J. (2010). Possible treatments for Arsenic removal in Latin American waters for human consumption. Environmental Pollution, 158(5), 1105–1118.
[92] Sharma, A. K., Tjell, J. C., & Mosbæk, H. (2007). Removal of Arsenic using household sand filters: Investigation of the behaviour of iron and Arsenic in the filter. Water Research, 41(15), 3317–3326.
[93] Johnston, R., Heijnen, H., & Wurzel, P. (2001). Safe water technology. In United Nations synthesis report on Arsenic in drinking water. World Health Organization.
[94] Hug, S. J., Leupin, O. X., & Berg, M. (2008). Bangladesh and Vietnam: Different groundwater compositions require different approaches to Arsenic mitigation. Environmental Science & Technology, 42(17), 6318–6323.