Cite

1. Asiriuwa, O.D., Ikhuoria, E.U., Omorogbe, S.O. & Akpaja, E.O. (2013). Physico-chemical characteristics of poultry droppings and its effects on growth and yield of Sclerotia of Pleurotus tuberregium. Int. J. Environ. Sci. 2(4), 130–137.Search in Google Scholar

2. Weber, J., Karczewska, A., Drozd, J., Licznar, M., Licznar, S., Jamroz, E. & Kocowicz, A. (2007). Agricultural and ecological aspects of a sandy soil as affected by the application of municipal solid waste composts. Soil Biol. Biochem. 39, 294–1302. DOI:10.1016/j.soilbio.2006.12.005.10.1016/j.soilbio.2006.12.005Search in Google Scholar

3. Singh, R.P. & Agrawal, M. (2008). Potential benefits and risks of land application of sewage sludge. Waste Manage. 28, 347–358. DOI: 10.1016/j.wasman.2006.12.010.10.1016/j.wasman.2006.12.010Search in Google Scholar

4. Castaldi. P., Santona, L. & Melis, P. (2006). Evolution of heavy metals mobility during municipal solid waste composting. Fresen. Environ. Bull. 15(9), 1133–1140.Search in Google Scholar

5. Yobouet, Y.A., Adouby, K., Trokourey, A. & Yao, B. (2010). Cadmium, copper, lead and zinc speciation in contaminated soils. Int. J. Eng. Sci. Tech. 2(5), 802–812. DOI: 10.1080/00103620009370502.10.1080/00103620009370502Search in Google Scholar

6. Singh. J. & Kalamdhad, A.S. (2013). Chemical speciation of heavy metals in amended soil- A review. Int. J. Environ. Eng. Res. 2(2), 27–37.Search in Google Scholar

7. Konradi, E.A., Frentiu, T., Ponta, M. & Cordos, E. (2005). Use of sequential extraction to assess metal fractionation in soils from Bozanta Mare Romania. Acta Univ. Cabiniensis Ser. F. Chem. J. 8, 5–12.Search in Google Scholar

8. Zufiaurre, R., Olivar, A., Chamorro, P., Nerin, C. & Callizo, A. (1998). Speciation of metals in sewage sludge for agricultural uses. Analyst 123(2), 255–259. DOI: 10.1039/A705168I.10.1039/a705168iSearch in Google Scholar

9. Tessier, A., Campbell, P.G.C. & Bisson, M. (1979). Sequential extraction procedure for the speciation of particulate trace metals. Analyt. Chem. 51(7), 844–851. DOI: 10.1021/ac50043a017.10.1021/ac50043a017Search in Google Scholar

10. Manios, T. & Stentiford, E.I. (2006). Heavy metals fractionation during the thermophilic phase of sewage sludge composting in aerated static piles. J. Environ. Sci. Health Part A, 41, 1235–1244.10.1080/10934520600656513Search in Google Scholar

11. Stover, R.C., Sommers l.E. & Silviera, D.J. (1976). Evaluation of metals in wastewater sludge. J. Water Poll. Control Fed. 48, 2165.Search in Google Scholar

12. SAS (1999). StatView Reference. 3rd Ed. SAS Institute Inc., Cary, NY, USA.Search in Google Scholar

13. Eneji A.E., Yamamoto, S., Honna, T. & Ishiguro, A. (2001). Physicochemical changes in livestock feces during composting. Commun. Soil Sci. Plant Anal. 32(3–4), 477–489. DOI: 10.1081/CSS-100103023.10.1081/CSS-100103023Search in Google Scholar

14. Eneji, A.E., Honna, T., Yamamoto, S. & Masuda, T. (2003). Influence of composting conditions on plant nutrient concentrations in manure compost. J. Plant Nutr. 26(8), 1595–1604. DOI: 10.1081/PLN-120022369.10.1081/PLN-120022369Search in Google Scholar

15. Petruzzeli, G, Scymura, I., Lubrano, I. & Pezzarossa, B. (1989). Chemical speciation of heavy metals in different size fraction of compost from solid urban waste. Environ. Technol. Letters 10, 51–526. DOI: 10.1080/09593338909384768.10.1080/09593338909384768Search in Google Scholar

16. Caviatti, C., Govi, M., Simoni, A. & Sequi, P. (1993). Evaluation of heavy metal during stabilization of organic matter in compost produced with municipal solid wastes. Biores. Technol. 43, 147–153. DOI: 10.1016/0960-8524(93)90174-A.10.1016/0960-8524(93)90174-ASearch in Google Scholar

17. Wong, J.W.C. & Fang, M. (2000). Effect of lime addition on sewage sludge composting process. Water Res. 34(15), 3691–3698. DOI: 10.1016/S0043-1354(00)00116-0.10.1016/S0043-1354(00)00116-0Search in Google Scholar

18. Irshad, M., Shazia, G., Eneji, A.E., Anwar, Z. & Ashraf, M. (2014). Extraction of heavy metals from manure and their bioavailability to spinach (Spinacia oleracea L.) after composting. J. Plant Nutr. 37, 1661–1675. DOI: 10.1080/01904167.2014.888748.10.1080/01904167.2014.888748Search in Google Scholar

19. Bolan, N.S., Adriano, D.C. & Mahimairaj, A.S. (2004). Distribution and bioavailability of trace elements in livestock and poultry manure by-products. Crit. Rev. Environ. Sci. Technol. 34, 291–338. DOI: 10.1080/10643380490434128.10.1080/10643380490434128Search in Google Scholar

20. Nicholson, F.A., Chambers, B.J., Williams, J.R. & Unwin, R.J. (1999). Heavy metal contents of livestock feeds and animal manures in England and Wales. Biores. Technol. 70, 23–31. DOI: 10.1016/S0960-8524(99)00017-6.10.1016/S0960-8524(99)00017-6Search in Google Scholar

21. Ahmed, M., Idris, A.S. & Omar, R.S. (2007). Physico-chemical characterization of compost of the industrial tannery sludge. J. Eng. Sci. Tech. 2, 81–94.Search in Google Scholar

22. Huang, G.F., Wong, J.W.C., Nagar, B.B., Wu, Q.T. & Li, F.B. (2005). Bioavailability of heavy metals during humification of organic matter in pig manure compost (http://www.eco-web.com/edi/index.htm).Search in Google Scholar

23. Pare, T., Dinel, H. & Schnitzer, M. (1999). Extractability of trace metals during co-composting of biosolids and municipal solid waste. Biol. Fert. Soils 29, 31–37. DOI: 10.1007/s003740050521.10.1007/s003740050521Search in Google Scholar

24. Uwumarongie-Ilori, E.G., Aisueni, N.O., Sulaiman-Ilobu, B.B., Ekhator, F., Eneje, R.C. & Efetie-Osie, A. (2012). Immobilization effect of cow dung on lead and chromium in soil cultivated with oil palm. Bull. Environ. Pharmacol. Life Sci. 1(9), 74–80.Search in Google Scholar

25. Urunmatsoma, S.O.P., Ikhuoria, E.U. & Okieimen, F.E. (2010). Chemical fractionation and heavy metal accumulation in maize (Zea mays L.) grown on chromated copper arsenate (CCA) contaminated soil amended with cow dung manure. Inter. J. Biotechnol. Mol. Biol. Res. 1(6), 65–73.Search in Google Scholar

eISSN:
1899-4741
Language:
English
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Journal Subjects:
Industrial Chemistry, Biotechnology, Chemical Engineering, Process Engineering