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Groundwater Geochemistry


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Health Effects. National Academies Press (US).

      21 Cramer, E.H., Blanton, C.J., Otto, C., and Team, V.S.P.E.H.I. (2008). Shipshape: sanitation inspections on cruise ships, 1990–2005, vessel sanitation program, centers for disease control and prevention. Journal of Environmental Health 70: 15–21.

      22 Cruz, J.V., Silva, M., Dias, M.I., and Prudêncio, M.I. (2013). Groundwater composition and pollution due to agricultural practices at Sete Cidades volcano (Azores, Portugal). Applied Geochemistry 29: 162–173.

      23 Dada, O.A., Adekola, F.A., and Odebunmi, E.O. (2016). Kinetics and equilibrium models for sorption of Cu (II) onto a novel manganese nano‐adsorbent. Journal of Dispersion Science and Technology 37: 119–133.

      24 Dai, K., Liu, G., Xu, W. et al. (2020). Judicious fabrication of bifunctionalized graphene oxide/MnFe2O4 magnetic nanohybrids for enhanced removal of Pb (II) from water. Journal of Colloid and Interface Science 579: 815–822.

      25 Dickinson, N.M., Baker, A.J., Doronila, A. et al. (2009). Phytoremediation of inorganics: realism and synergies. International Journal of Phytoremediation 11: 97–114.

      26 Doula, M.K. (2009). Simultaneous removal of Cu, Mn and Zn from drinking water with the use of clinoptilolite and its Fe‐modified form. Water Research 43: 3659–3672.

      27 Elimelech, M. (2006). The global challenge for adequate and safe water. Journal of Water Supply: Research and Technology—AQUA 55: 3–10.

      28  Emmanuel, E., Perrodin, Y., Keck, G. et al. (2005). Ecotoxicological risk assessment of hospital wastewater: a proposed framework for raw effluents discharging into urban sewer network. Journal of Hazardous Materials 117: 1–11.

      29 Emmanuel, E., Pierre, M.G., and Perrodin, Y. (2009). Groundwater contamination by microbiological and chemical substances released from hospital wastewater: health risk assessment for drinking water consumers. Environment International 35: 718–726.

      30 EPA, U.S. Minor clarification of National Primary Drinking Water Regulation for arsenic proposed; rule Fed. Regist. 67(2002) 78202–78209.

      31 European Commission Directive EC, related with drinking water quality intended for human consumption Brussels, Belgium, 1998.

      32 Fan, C., Liu, G., Long, Y. et al. (2018). Thiolation in arsenic metabolism: a chemical perspective. Metallomics 10: 1368–1382.

      33 Fausey, C.L., Zucker, I., Shaulsky, E. et al. (2019). Removal of arsenic with reduced graphene oxide‐TiO2‐enabled nanofibrous mats. Chemical Engineering Journal 375: 122040.

      34 Fernandez‐Luqueno, F., López‐Valdez, F., Gamero‐Melo, P. et al. (2013). Heavy metal pollution in drinking water‐a global risk for human health: a review. African Journal of Environmental Science and Technology 7: 567–584.

      35 Filter, T.B.W. 29 March 2020. Health Effects of Mercury in Drinking Water [Online]. Berkey Water Filter. Available: https://theberkey.com/blogs/water‐filter/160104135‐health‐effects‐of‐mercury‐in‐drinking‐water.

      36 Friberg, L. and Vahter, M. (1983). Assessment of exposure to lead and cadmium through biological monitoring: results of a UNEP/WHO global study. Environmental Research 30: 95–128.

      37 Ghrefat, H., Nazzal, Y., Batayneh, A. et al. (2014). Geochemical assessment of groundwater contamination with special emphasizes on fluoride, a case study from Midyan Basin, northwestern Saudi Arabia. Environmental Earth Sciences 71: 1495–1505.

      38 Gode, F. and Pehlivan, E. (2006). Removal of chromium (III) from aqueous solutions using Lewatit S 100: the effect of pH, time, metal concentration and temperature. Journal of Hazardous Materials 136: 330–337.

      39 Gomez‐Caminero, A., Howe, P.D. et al. (2001). Arsenic and Arsenic Compounds. World Health Organization.

      40 Grossman, D. and Slutsky, D.J. 2017. The effect of an increase in lead in the water system on fertility and birth outcomes: The case of Flint, Michigan.

      41 Hao, L., Wang, N., Wang, C., and Li, G. (2018). Arsenic removal from water and river water by the combined adsorption‐UF membrane process. Chemosphere 202: 768–776.

      42 Hashim, M.A., Mukhopadhyay, S., Sahu, J.N., and Sengupta, B. (2011). Remediation technologies for heavy metal contaminated groundwater. Journal of Environmental Management 92: 2355–2388.

      43 Hashim, M.A., Kundu, A., Mukherjee, S. et al. (2019). Arsenic removal by adsorption on activated carbon in a rotating packed bed. Journal of Water Process Engineering 30: 100591.

      44 Horton, L.M., Mortensen, M.E., Iossifova, Y. et al. (2013). What Do We Know of Childhood Exposures to Metals (Arsenic, Cadmium, Lead, and Mercury) in Emerging Market Countries? International Journal of Pediatrics. 2013: 872596. https://doi.org/10.1155/2013/872596.

      45  Hosamane, S.N. (2012). Removal of arsenic by phytoremediation‐a study of two plant spices. International Journal of Scientific Engineering and Technology 1: 218–224.

      46 Hughes, M.F. (2002). Arsenic toxicity and potential mechanisms of action. Toxicology Letters 133: 1–16.

      47 Hussein, A. and Alatabe, M. (2019). Remediation of lead‐contaminated soil, using clean energy in combination with electro‐kinetic methods. Pollution 5: 859–869.

      48 Islam, S.M.F. and Karim, Z. (2019). World's Demand for Food and Water: The Consequences of Climate Change. Desalination‐Challenges and Opportunities. IntechOpen.

      49 Jain, C. and Ali, I. (2000). Arsenic: occurrence, toxicity and speciation techniques. Water Research 34: 4304–4312.

      50 Järup, L. (2003). Hazards of heavy metal contamination. British Medical Bulletin 68: 167–182.

      51 Kass, A., Gavrieli, I., Yechieli, Y. et al. (2005). The impact of freshwater and wastewater irrigation on the chemistry of shallow groundwater: a case study from the Israeli Coastal Aquifer. Journal of Hydrology 300: 314–331.

      52 Khulbe, K. and Matsuura, T. (2018). Removal of heavy metals and pollutants by membrane adsorption techniques. Applied Water Science 8: 19.

      53 Kümmerer, K. (2001). Drugs in the environment: emission of drugs, diagnostic aids and disinfectants into wastewater by hospitals in relation to other sources–a review. Chemosphere 45: 957–969.

      54 Labanda, J., Khaidar, M.S., and Llorens, J. (2009). Feasibility study on the recovery of chromium (III) by polymer enhanced ultrafiltration. Desalination 249: 577–581.

      55 Lapworth, D., Baran, N., Stuart, M., and Ward, R. (2012). Emerging organic contaminants in groundwater: a review of sources, fate and occurrence. Environmental Pollution 163: 287–303.

      56 Li, J., Xing, X., Li, J. et al. (2018). Preparation of thiol‐functionalized activated carbon from sewage sludge with coal blending for heavy metal removal from contaminated water. Environmental Pollution 234: 677–683.

      57 Majumder, A., Ramrakhiani, L., Mukherjee, D. et al. (2019). Green synthesis of iron oxide nanoparticles for arsenic remediation in water and sludge utilization. Clean Technologies and Environmental Policy 21: 795–813.

      58 Mandal, B.K. and Suzuki, K.T. (2002). Arsenic round the world: a review. Talanta 58: 201–235.

      59 Marg, B.Z. 2011. Hazardous metals and minerals pollution in India: Sources, toxicity and management. A Position Paper, Indian National Science Academy, New Delhi.

      60 Mcneill, L., Mclean, J., Edwards, M., and Parks, J. (2012). State of the science of hexavalent chromium in drinking water. Pollution Engineering 44: 6666.

      61 Mebrahtu, G. and Zerabruk, S. (2011). Concentration and health implication of heavy metals in drinking water from urban areas of Tigray region, Northern Ethiopia. Momona Ethiopian Journal of Science 3: 105–121.

      62 Megremi, I., Vasilatos, C., Atsarou, A. et al. (2013). Geochemical evidences for the sources of the Cr (VI) contamination in groundwater in Central Euboea and Assopos‐Thiva basins, Greece: natural versus anthropogenic origin.