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of spatial and temporal variations in water quality of Gomti River (India): a case study. Water
Res 38:3980–3992
Smedley PL, Kinniburgh DG (2002) A review of the source, behaviour and distribution of arsenic
in natural waters. Appl Geochem 17:517–568
Sobolewski A (1999) A review of processes responsible for metal removal in wetlands treating
contaminated mine drainage. Int J Phytoremediation 1(1):19–51
Terry N, Carlson C, Raab TK, Zayed AM (1992) Rates of selenium volatilization among crop
species. J Environ Qual 21:341–344
U.S. EPA (Environmental Protection Agency) (1997) Mercury study report to congress. Available
at: http://www.epa.gov/mercury/report.htm. Accessed on 10 Mar 2017
United States Environmental Protection Agency (2000) Manual WM. Government Institutes Inc
USEPA (2003) Comprehensive Environmental Response, Compensation and Liability Act
(CERCLA). USEPA, Washington, DC
Valko MMHCM, Morris H, Cronin MTD (2005) Metals, toxicity and oxidative stress. Curr Med
Chem 12(10):1161–1208
VandenBerg GA, GustavLoch JP, vanderHeijdt LM, Zwolsman JJG (1999) Mobilisation of heavy
metals in contaminated sediments in the river Meuse, The Netherlands. Water Air Soil Pollut
116(3–4):567–586
Vandenhove H, van Hees M, van Winkel S (2001) Feasibility of phytoextraction to clean up
low-level uranium-contaminated soil. Int J Phytoremediation 3:301–320
Vangronsveld J, Herzig R, Weyens N, Boulet J, Adriaensen K, Ruttens A (2009) Phytoremediation
of contaminated soils and groundwater: lessons from the field. Environ Sci Pollut Res Int
16:765–794
Vassil AD, Kapulmik Y, Raskin I, Salt DE (1998) The role of EDTA in lead transport and
accumulation by Indian mustard. Plant Physiol 117:447–453
Walker DJ, Hurl S (2002) The reduction of heavy metals in a stormwater wetland. Ecol Eng 18
(4):407–414
Wang Z, Yang L (2015) Delinking indicators on regional industry development and carbon
emissions: Beijing-Tianjin-Hebei economic band case. Ecol Indic 48:41–48
Weis JS, Weis P (2004) Metal uptake, transport and release by wetland plants: implications for
phytoremediation and restoration. Environ Int 30(5):685–700
Wilson DJ, Chang E (2000) Bioturbation and the oxidation of sulfide in sediments. J Tenn Acad Sci
75:76–85
Yao ZG, Gao P (2007) Heavy metal research in lacustrine sediment: a review. Chin J Oceanol
Limnol 25(4):444–454
Zayed A, Pilon Smits E, deSouza M, Lin ZQ, Terry N (2000) Remediation of selenium polluted
soils and waters by phytovolatilization. In: Terry N, Bañuelos G (eds) Phytoremediation of
contaminated soil and water. Lewis, Boca Raton, pp 61–83
Zoppou C (2001) Review of urban storm water models. Environ Model Softw 16(3):195–231
Zoumis T, Schmidt A, Grigorova L, Calmano W (2001) Contaminants in sediments: remobilisation
and demobilisation. Sci Total Environ 266(1–3):195–202
282
M. Rastogi and M. Nandal
of spatial and temporal variations in water quality of Gomti River (India): a case study. Water
Res 38:3980–3992
Smedley PL, Kinniburgh DG (2002) A review of the source, behaviour and distribution of arsenic
in natural waters. Appl Geochem 17:517–568
Sobolewski A (1999) A review of processes responsible for metal removal in wetlands treating
contaminated mine drainage. Int J Phytoremediation 1(1):19–51
Terry N, Carlson C, Raab TK, Zayed AM (1992) Rates of selenium volatilization among crop
species. J Environ Qual 21:341–344
U.S. EPA (Environmental Protection Agency) (1997) Mercury study report to congress. Available
at: http://www.epa.gov/mercury/report.htm. Accessed on 10 Mar 2017
United States Environmental Protection Agency (2000) Manual WM. Government Institutes Inc
USEPA (2003) Comprehensive Environmental Response, Compensation and Liability Act
(CERCLA). USEPA, Washington, DC
Valko MMHCM, Morris H, Cronin MTD (2005) Metals, toxicity and oxidative stress. Curr Med
Chem 12(10):1161–1208
VandenBerg GA, GustavLoch JP, vanderHeijdt LM, Zwolsman JJG (1999) Mobilisation of heavy
metals in contaminated sediments in the river Meuse, The Netherlands. Water Air Soil Pollut
116(3–4):567–586
Vandenhove H, van Hees M, van Winkel S (2001) Feasibility of phytoextraction to clean up
low-level uranium-contaminated soil. Int J Phytoremediation 3:301–320
Vangronsveld J, Herzig R, Weyens N, Boulet J, Adriaensen K, Ruttens A (2009) Phytoremediation
of contaminated soils and groundwater: lessons from the field. Environ Sci Pollut Res Int
16:765–794
Vassil AD, Kapulmik Y, Raskin I, Salt DE (1998) The role of EDTA in lead transport and
accumulation by Indian mustard. Plant Physiol 117:447–453
Walker DJ, Hurl S (2002) The reduction of heavy metals in a stormwater wetland. Ecol Eng 18
(4):407–414
Wang Z, Yang L (2015) Delinking indicators on regional industry development and carbon
emissions: Beijing-Tianjin-Hebei economic band case. Ecol Indic 48:41–48
Weis JS, Weis P (2004) Metal uptake, transport and release by wetland plants: implications for
phytoremediation and restoration. Environ Int 30(5):685–700
Wilson DJ, Chang E (2000) Bioturbation and the oxidation of sulfide in sediments. J Tenn Acad Sci
75:76–85
Yao ZG, Gao P (2007) Heavy metal research in lacustrine sediment: a review. Chin J Oceanol
Limnol 25(4):444–454
Zayed A, Pilon Smits E, deSouza M, Lin ZQ, Terry N (2000) Remediation of selenium polluted
soils and waters by phytovolatilization. In: Terry N, Bañuelos G (eds) Phytoremediation of
contaminated soil and water. Lewis, Boca Raton, pp 61–83
Zoppou C (2001) Review of urban storm water models. Environ Model Softw 16(3):195–231
Zoumis T, Schmidt A, Grigorova L, Calmano W (2001) Contaminants in sediments: remobilisation
and demobilisation. Sci Total Environ 266(1–3):195–202
282
M. Rastogi and M. Nandal
