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Research Articles

Distribution of nickel in different agro-climatic zones of Jharkhand, India

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Pages 52-58 | Received 22 Jul 2018, Accepted 18 Feb 2019, Published online: 04 Mar 2019

References

  • Anderson, P. R., & Christensen, T. H. (1988). Distribution coefficients of Cd, Co, Ni, and Zn in soils. Journal of Soil Science, 39, 15–22.
  • Barman, M., Datta, S. P., Rattan, R. K., & Meena, M. C. (2015). Chemical fractions and bioavailability of nickel in alluvial soils. Plant Soil Environment, 61(1), 17–22. doi:10.17221/613/2014-PSE.61.017
  • Bharose, R., Singh, S. K., & Srivastava, P. K. (2013). Heavy metals pollution in soil-water-vegetation continuum irrigated with ground water and untreated sewage. Bulletin Environment Sciences Researcher, 2, 1–8.
  • Bingham, F. T., Page, A. L., & Strong, J. E. (1980). Yield and cadmium content of rice grain in relation to addition rates of cadmium, copper, nickel and zinc with sewage sludge and liming. Soil Science, 130, 32-8. doi:10.1097/00010694-198007000-00006
  • Brown, P. H., Welch, R. M., & Cary, E. E. (1987). Nickel: A micronutrient essential for higher plants. Plant PhysiologyPlant, 85, 801–803.
  • Cempel, M., & Nikel, G. (2006). Nickel: A review of its sources and environmental toxicology. Polish Journal of Environmental Studies, 15(3), 375–382.
  • Chang, A. T., & Sherman, G. D. (1953). The nickel content of some Hawaiian soil and plants and the relation of nickel to plant growth. Hawaii Agricultural Experiment Station, Bulletin, 19, 3.
  • Clayton, G. D., & Clayton, F. E. (1994). Pattys industrial hygiene toxicology (4th ed). New York: A Wiley- Interscience Publication.
  • DEPA. (2005). Draft risk assessment. Nickel (CAS No: 7440-02-0), EINECS No: 231-111-4. Copenhagen: Danish Environmental Protection Agency.
  • Ewetola, E. A., Oyediran, G. O., Owoade, F. M., & Ojo, O. I. (2010). Variations in soil physical properties along toposequence of an alfisol in Southern Guinea Savanna of Nigeria. International Journal of Agriculture Environment and Biotechnology, 3(3), 303–305.
  • Gadd, G. M., & Griffiths, A. J. (1978). Microorganisms and heavy metal toxicity. Microbial Ecology, 4, 303–317.
  • Gautam, S. K., Maharana, C., Sharma, D., Singh, A. K., Tripathi, J. K., & Singh, S. K. (2015). Evaluation of groundwater quality in the Chotanagpur plateau region of the Subarnarekha river basin, Jharkhand state, India. Sustainability of Water Quality and Ecology, 6, 57–74.
  • Gautam, S. K., Sharma, D., Tripathi, J. K., Ahirwar, S. K., & Singh, S. (2013). A study of the effectiveness of sewage treatment plants in Delhi region. Applications Water Sciences, 3, 57–65.
  • Ge, Y., Murray, P., & Hendershot, W. H. (2000). Trace metal speciation and bioavailability in urban soils. Environmental Pollution, 107, 137–144.
  • Hesse, P. R. (1994). A text book of soil chemical analysis. New Delhi: CBS Publishers and Distributors.
  • Kirkham, M. B. (1983). Study on accumulation of heavy metals in soils receiving sewage water. Agriculture, Ecosystems and Environment, 9, 251–255.
  • Lindsay, W. L., & Norvell, W. A. (1978). Development of a DTPA soil test for zinc, iron, manganese, and copper. Soil Science Society of America Journal, 42, 421–428.
  • Massoura, S. T., Echevarria, G., Becquer, T., Ghanbaja, J., Leclerc- Cessac, E., & Morel, J.-L. (2006). Control of nickel availability by nickel bearing minerals in natural and anthropogenic soils. Geoderma, 136, 28–37.
  • McGrath, S. P. (1995). Nickel. In B. J. Alloway (Ed.), Heavy metals in soils (Vol. XIV, pp. 368). London: Blackie Academic & Professional.
  • Mitsimbonas, T., Karyotis, T., Haroulis, A., & Argyropoulos, G. (1998). Distribution of nutrients and heavy metals in agricultural soils of Larissa region. Georgike-Ereuna-Nea-Seira, 20, 48–54.
  • Panse, V. G., & Sukhatme, P. V. (1961). Statistical methods for agricultural workers. New Delhi: ICAR.
  • Patle, G. T., Rawat, K. S., & Singh, S. K. (2019). Estimation of infiltration rate from soil properties using regression model for fallow cultivated land. Geology, Ecology, and Landscapes, 3(1). doi:10.1080/24749508.2018.1481633
  • Paudel, D., Thakur, J. K., Singh, S. K., & Srivastava, P. K. (2015). Soil characterization based on land cover heterogeneity over a tropical landscape: An integrated approach using earth observation data-sets. Geocarto International, 30(2), 218–241.
  • Peijnenburg, W. J. G. M., Posthuma, L., Eijsackers, H. J. P., & Allen, H. E. (1997). A conceptual framework for implementation of bioavailability of metals for environmental management purposes. Ecotoxicology and Environmental Safety, 37, 163–172.
  • Rawat, K. S., Kumar, R., & Singh, S. K. (2018). Topographical distribution of cobalt in different agro-climatic zones of Jharkhand state, India. Geology, Ecology, and Landscapes. doi: 10.1080/24749508.2018.1481654
  • Rawat, K. S., Mishra, A. K., & Singh, A. K. (2017a). Mapping of groundwater quality using normalized difference dispersal index of Dwarka sub-city at Delhi national capital of India. ISH Journal of Hydraulic Engineering, 23(3), 229–240.
  • Rawat, K. S., Tripathi, V. K., & Singh, S. K. (2017b). Groundwater quality evaluation using numerical indices: A case study (Delhi, India). Sustainable Water Resources Management. doi:10.1007/s40899-017-0181-9
  • Reddy, G. N., & Prasad, M. N. V. (1990). Heavy metal binding proteins peptides, occurrence, structure, synthesis and function review. Environmental and Experimental Botany, 30, 252–264.
  • Reed, R. H., & Gadd, G. M. (1989). Metal tolerance in eukaryotic and prokaryotic algae. In A. J. Shaw (Ed.), Heavy metal tolerance in plants: Evolutionary aspects (pp. 105–118). Boca Raton, Florida: CRC Press.
  • Reimann, C., Demetriades, A., Eggen, O. A., & Filzmoser, P. and The EurogGeoSurveys Geochemistry expert group (2009). The EuroGeoSurveys geochemical mapping of agricultural and grazing land soils project (GEMAS)–Evaluation of quality control results of aqua regia extraction analysis (NGU Report 2009.49). 94. Trondheim, Norway: Geological Survey of Norway.
  • Reimann, C., Demetriades, A., Eggen, O. A., & Filzmoser, P. and The EurogGeoSurveys Geochemistry expert group (2011). The EuroGeoSurveys geochemical mapping of agricultural and grazing land soils project (GEMAS) – Evaluation of quality control results of total C and S, total organic carbon (TOC), cation exchange capacity (CEC), XRF, pH, and particle size distribution (PSD) analysis (NGU Report 11.043). 90. Trondheim, Norway: Geological Survey of Norway.
  • Rooney, C. P., Zhao, F. -J., & McGrath, S. P. (2007). Phytotoxicity of nickel in a range of European soils: Influence of soil properties, Ni solubility and speciation. Environmental Pollution, 145, 596–605.
  • Sharma, B., Kumar, M., Denis, D. M., & Singh, S. K. (2018). Appraisal of river water quality using open-access earth observation data set: A study of River Ganga at Allahabad (India). Sustainable Water Resources Management, 1-11. doi:10.1007/s40899-018-0251-7
  • Vanselow, A. P. (1952). Microelements in citrus. California Agriculture, 6, 5.