1,678
Views
9
CrossRef citations to date
0
Altmetric
Article

Total nitrogen and pH-controlled chemical speciation, bioavailability and ecological risk from Cd, Cr, Cu, Pb and Zn in the water level-fluctuating zone sediments of the Three Gorges Reservoir

, , ORCID Icon, , , , & show all
Pages 89-96 | Received 14 Feb 2017, Accepted 18 May 2017, Published online: 02 Jun 2017

References

  • Salazar MJ, Rodriguez JH, Nieto GL, et al. Effects of heavy metal concentrations (Cd, Zn and Pb) in agricultural soils near different emission sources on quality, accumulation and food safety in soybean [Glycine max (L) Merrill]. J Hazard Mater. 2012;233:244–253.10.1016/j.jhazmat.2012.07.026
  • Rocio M, Elvira E, Pilar Z, et al. Could an abandoned mercury mine area be cropped? Environ Res. 2013;125:150–159.10.1016/j.envres.2012.12.012
  • Wang Y, Huang P, Ye F, et al. Nitrite-dependent anaerobic methane oxidizing bacteria along the water level fluctuation zone of the Three Gorges Reservoir. Applied microbiology and biotechnology. 2016;100:1977–1986.
  • Liu J, Jiang T, Huang R, et al. A simulation study of inorganic sulfur cycling in the water level fluctuation zone of the Three Gorges Reservoir, China and the implications for mercury methylation. Chemosphere. 2017;166:31–40.
  • Bao Y, Gao P, He X. The water-level fluctuation zone of Three Gorges Reservoir – a unique geomorphological unit. Earth Sci Rev. 2015;150:14–24.10.1016/j.earscirev.2015.07.005
  • Ye C, Li S, Zhang Y, et al. Assessing heavy metal pollution in the water level fluctuation zone of China’s Three Gorges Reservoir using geochemical and soil microbial approaches. Environ Monit Assess. 2013;185:231–240.10.1007/s10661-012-2547-7
  • Ye C, Li S, Zhang Y, et al. Assessing soil heavy metal pollution in the water-level-fluctuation zone of the Three Gorges Reservoir, China. J Hazard Mater. 2011;191:366–372.10.1016/j.jhazmat.2011.04.090
  • Lin J, Fu C, Zhang X, et al. Heavy metal contamination in the water-level fluctuating zone of the Yangtze River within Wanzhou Section, China. Biol Trace Elem Res. 2012;145:268–272.10.1007/s12011-011-9179-6
  • Zhang W, Feng H, Chang J. Heavy metal contamination in surface sediments of Yangtze River intertidal zone: an assessment from different indexes. Environ Pollut. 2009;157:1533–1543.10.1016/j.envpol.2009.01.007
  • Mossop KF, Davidson CM. Comparison of original and modified BCR sequential extraction procedures for the fractionation of copper, iron, lead, manganese and zinc in soils and sediments. Anal Chim Acta. 2003;478:111–118.10.1016/S0003-2670(02)01485-X
  • Singh KP, Mohan D, Singh VK, et al. Studies on distribution and fractionation of heavy metals in Gomti river sediments-a tributary of the Ganges, India. J Hydrol. 2005;312:14–27.10.1016/j.jhydrol.2005.01.021
  • Liu G, Zhou C, Kang Y, et al. Mobility, binding behavior and potential risks of trace metals in the sediments of the fifth largest freshwater lake, China. Water Sci Technol. 2013;67:2503–2510.10.2166/wst.2013.099
  • Matong JM, Nyaba L, Nomngongo PN. Fractionation of trace elements in agricultural soils using ultrasound assisted sequential extraction prior to inductively coupled plasma mass spectrometric determination. Chemosphere. 2016;154:249–251.10.1016/j.chemosphere.2016.03.123
  • Kalhori A, Jafari H, Yavari A, et al. Evaluation of anthropogenic impacts on soil and regolith materials based on BCR sequential extraction analysis, Assaluyeh. Int J Environ Res. 2012;6:185–194.
  • Hakanson L. An ecological risk index for aquatic pollution control a sedimentological approach. Water Res. 1980;14:975–1001.10.1016/0043-1354(80)90143-8
  • Nelson DW, Sommers LE. Total carbon, organic carbon and organic matter [part 2: methods of soil analysis]. Methods Soil Anal Part 3-Chem Methods. 1996;21:961–1010.
  • Rhoades JD. Cation exchange capacity. Methods Soil Anal Part 3-Chem Methods. 1982;32:149–157.
  • Tamburini E, Ferrari G, Marchetti MG, et al Development of FT-NIR models for the simultaneous estimation of chlorophyll and nitrogen content in fresh apple (Malus Domestica) leaves. Sensors. 2015;15:2662–2679.10.3390/s150202662
  • Tang Q, Bao Y, He X. Sedimentation and associated trace metal enrichment in the riparian zone of the Three Gorges Reservoir, China. Sci Total Environ. 2014;479:258–266.10.1016/j.scitotenv.2014.01.122
  • Ersahin S, Gunal H, Kutlu T, et al. Estimating specific surface area and cation exchange capacity in soils using fractal dimension of particle-size distribution. Geoderma. 2006;136(3):588–597.10.1016/j.geoderma.2006.04.014
  • Zhu ZM, Lu LN, Yao XN, et al. Elemental backgrorund values of soils in China. Beijing: Environment Science Press of China; 1990.
  • Tu JJ, Chen ZJ, Chen GJ, et al. A study on land consolidation and utilization of the water-level-fluctuating zone in the Three Gorges Reservoir – a case study of Kaixian county, Chongqing city. J Mountain Res. 2002;6:011.
  • Lian J, Yao Y, Ma C, et al. Reservoir operation rules for controlling algal blooms in a tributary to the impoundment of Three Gorges dam. Water. 2014;6(10):3200–3223.10.3390/w6103200
  • Tranvik LJ, Downing JA, Cotner JB. Lakes and reservoirs as regulators of carbon cycling and climate. Limnol Oceanogr. 2009;54:2298–2314.10.4319/lo.2009.54.6_part_2.2298
  • Weng L, Temminghoff EJM, Lofts S. Complexation with dissolved organic matter and solubility control of heavy metals in a sandy soil. Environ Sci Technol. 2002;36:4804–4810.10.1021/es0200084
  • Reeder RJ. Crystal chemistry of the rhombohedral carbonates. Rev Mineral Geochem. 1983;11:1–47.
  • Rodríguez L, Ruiz E, Alonso-Azcárate J. Heavy metal distribution and chemical speciation in tailings and soils around a Pb–Zn mine in Spain. J Environ Manage. 2009;90:1106–1116.10.1016/j.jenvman.2008.04.007
  • Florido MC, Madrid F, Ajmone-Marsan F. Variations of metal availability and bio-accessibility in water-logged soils with various metal contents: in vitro experiments. Water Air Soil Pollut. 2011;217:149–156.10.1007/s11270-010-0575-x
  • Guo SH, Liu ZL, Li QS. Leaching heavy metals from the surface soil of reclaimed tidal flat by alternating seawater inundation and air drying. Chemosphere. 2016;157:262–270.10.1016/j.chemosphere.2016.05.019
  • Wang TJ, Yang QW, Jin P. Chemical fraction composition characteristics of heavy metals in sediments of water-level-fluctuating zone of Three Gorges Reservoir area. J Environ Health. 2012;29:905–909.
  • Huang JH, Fang Y, Zeng GM, et al. Influence of pH on heavy metal speciation and removal from wastewater using micellar enhanced ultrafiltration. Chemosphere. 2016;173:199–206.
  • Azouzi R, Charef A, Hamzaoui AH. Assessment of effect of pH, temperature and organic matter on zinc mobility in a hydromorphic soil. Environ Earth Sci. 2015;74:1–14.
  • WangY X, Chen ML, Ding JW. Experiment research on the relationship of availability and fraction transformation of copper and zinc with pH. Sci Technol Eng. 2014;18:14–19.
  • He H, Hong FF, Tao XX, et al. A study on soil basic characteristics, main microbial flora and typical metal fraction surrounding coal gangue dump in Xiangtan Hunan Province, south of China. Environ Earth Sci. 2016;75:1–9.
  • Zeng F, Ali S, Zhang H, et al. The influence of pH and organic matter content in paddy soil on heavy metal availability and their uptake by rice plants. Environ Pollut. 2011;159:84–91.10.1016/j.envpol.2010.09.019
  • Calmano W, Hong J, Förstner U. Binding and mobilization of heavy metals in contaminated sediments affected by pH and redox potential. Water Sci Technol. 1993;28:223–235.
  • Hernandez-Soriano MC, Jimenez-Lopez JC. Effects of soil water content and organic matter addition on the speciation and bioavailability of heavy metals. Sci Total Environ. 2012;423:55–58.10.1016/j.scitotenv.2012.02.033
  • Chaturvedi PK, Seth CS, Misra V. Sorption kinetics and leachability of heavy metal from the contaminated soil amended with immobilizing agent (humus soil and hydroxyapatite). Chemosphere. 2006;64:1109–1114.10.1016/j.chemosphere.2005.11.077
  • García C, Moreno JL, Hernández T, et al. Effect of composting on sewage sludges contaminated with heavy metals. Biores Technol. 1995;53:13–19.10.1016/0960-8524(95)00040-L
  • Peruzzi E, Masciandaro G, Macci C. Heavy metal fractionation and organic matter stabilization in sewage sludge treatment wetlands. Ecol Eng. 2011;37:771–778.10.1016/j.ecoleng.2010.05.009
  • Bo Li, Qing CL, Zhou ZB, et al. Effects of nitrogen, phosphorus and organic matter on heavy metal behavior in soils and its application of controlling pollution. Agro-Environ Prot. 2000;6:34–39.
  • Holbach A, Norra S, Wang L, et al. Three Gorges Reservoir: density pump amplification of pollutant transport into tributaries. Environ Sci Technol. 2014;48:7798–7806.10.1021/es501132k
  • Zhu K, Bi Y, Hu Z. Responses of phytoplankton functional groups to the hydrologic regime in the Daning River, a tributary of Three Gorges Reservoir, China. Sci Total Environ. 2013;450:169–177.10.1016/j.scitotenv.2013.01.101
  • Lin JJ, Yu ZG. Ecological risk caused in soil by heavy metals in the water-level-fluctuating zone of a Yangtze River tributary. Environ Eng Manage J. 2014;13:923–928.
  • Chen CX, Xia J, Zhan YZ, et al. Speciation distribution and potential ecological risk assessment of heavy metals in sediments of Taihu Lake, China. Environ Sci. 2011;31:1842–1848.
  • Kashem M, Singh B. Transformations in solid phase species of metals as affected by flooding and organic matter. Commun Soil Sci Plant Anal. 2004;35:1435–1456.10.1081/CSS-120037556
  • Mohamed I, Ahamadou B, Li M, et al. Fractionation of copper and cadmium and their binding with soil organic matter in a contaminated soil amended with organic materials. J Soils Sediments. 2010;10:973–982.10.1007/s11368-010-0199-1