230
Views
1
CrossRef citations to date
0
Altmetric
Articles

Phytoremediation and absorption isotherms of heavy metal ions by Convolvulus tricolor (CTC)

&

References

  • Aharoni C, Ungarish M. 1977. Kinetics of activated chemisorption. Part 2. Theoretical models. Journal of the Chemical Society Faraday Transactions 73:456–464.
  • Akpinar A, Arslan H, Güleryüz G, Kırmızı S, Erdemİr ÜS, Güçer Ş. 2015. Ni-induced Changes in Nitrate Assimilation and Antioxidant Metabolism of Verbascum olympicum Boiss.: Could the Plant be Useful for Phytoremediation or/and Restoration Purposes? International Journal of Phytoremediation 17:546–555.
  • Baycu G, Doganay T, Hakan O, Sureyya G. 2006. Ecophysiological and seasonal variations in Cd, Pb, Zn, and Ni concentrations in the leaves of urban deciduous trees in Istanbul. Environ Pollut 143:545−554.
  • Brboot MM, Abi BA, Al-Shuwaik NM. 2011. Removal of Heavy Metals Using Chemicals Precipitation. Eng & Tech Journal 29(3):595−612.
  • Brunauer S, Emmett PH, Teller E. 1938. Adsorption of Gases in Multimolecular Layers. Journal of the American Chemical Society 60:309−319.
  • Cox M, Prada M. 2005. Trace metal distribution within marine and estuarine sediments of western moreton bay, Queensland, Australia: relation to land use and setting. Geogr Res 43:173–193.
  • Dabrowski A. 2001. Adsorption-from theory to practice. Advances in Colloid and Interface Science 93:135–224.
  • Da̧browski A, Hubicki Z, Podkościelny P, Robens E. 2004. Selective removal of the heavy metal ions from waters and industrial wastewaters by ion-exchange method. Chemosphere 56(2):91−106.
  • DS I, Jr BI. 2015. Phytoremediation of Cd, Ni, Pb and Zn by Salvinia minima. Int J Phytoremediation 17(10):929−935.
  • Erdem E, Karapinar N, Donat R. 2004. The removal of heavy metal cations by natural zeolites. Journal of Colloid and Interface Science 280(2):309–314.
  • Freundlich HMF. 1906. über die adsorption in lösungen. zeitschrift für physikslische chemie 57:385−470.
  • García Guardia G. 1988. Flores Silvestres de Andalucía. Alcorcón: Rueda.
  • Gondal MA, Seddigi ZS, Nasr MM, Gondal B. 2009. Spectroscopic detection of health hazardous contaminants in lipstick using Laser Induced Breakdown Spectroscopy. Journal of Hazardous Materials 175(1−3): 726−732.
  • Greman H, Velikonja-Bolta S, Vodnik D, Kos B, Lestan D. 2001. EDTA enhanced heavy metal phytoextraction: Metal accumulation, leaching and toxicity. Plant and Soil 235:105–114.
  • Gunay A, Arslankaya E, Tosun I. 2007. Lead removal from aqueous solution by natural and pretreated clinoptilolite: adsorption equilibrium and kinetics. Journal of Hazardous Materials 146:362–371.
  • Hammad DM. 2011. Cu, Ni and Zn Phytoremediation and Translocation by Water Hyacinth Plant at Different Aquatic Environments. Australian Journal of Basic and Applied Sciences 5(11):11−22.
  • Herbario Virtual: Convolvulus tricolor L. subsp. Pentapetaloides.
  • Kumar BGP, Shivakamy K, Miranda LR, Velan M. 2006 .Preparation of steam activated carbon from rubber wood sawdust (Hevea brasiliensis) and its adsorption kinetics. Journal of Hazardous Materials 136:922–929.
  • Langmuir I. 1916. The constitution and fundamental properties of solids and liquids. Journal American Chemical Society 38:2221−2295.
  • Lebeau T, Braud A, Jezequel K. 2007. Performance of bio-augmentation-assisted phytoextraction applied to metal contaminated soils. Environmental Pollution 153(3):497−522.
  • Li Q, Zhai J, Zhang W, Wang M, Zhou J. 2006. Kinetic studies of adsorption of Pb (II), Cr (III) and Cu (II)from aqueous solution by sawdust and modified peanut husk. Journal of Hazardous Material 141:163−167.
  • Macfarlane GR, Pulkownik A, Burchett MD. 2008. Accumulation and distribution of heavy metals in the grey mangrove, A vicennia marina (Forsk.) Vierh: biological indication potential. Environmental Pollution 123:139−51.
  • Maestri E, Marmiroli N. 2011. Transgenic Plants for Phytoremediation. International Journal of Phytoremediation 13(S1):264–279.
  • Malakootian M, Almasi A, Hossaini H. 2008. Pb and Co removal from paint industries effluent using wood ash. International Journal of Environmental Science and Technology 5(2):217−222.
  • Mellem JJ, Baijnath H, Odhav B. 2012. Bioaccumulation of Cr, Hg, As, Pb, Cu and Ni with the ability for hyperaccumulation by Amaranthus dubius. African Journal of Agricultural Research 7(4):591−596.
  • Mellem JJ. 2010. Phytoremediation of heavy metals using Amaranthus dubius. Degree of master of technology (Biotechnology) thesis, Department of Biotechnology and Food Technology, Durban University of Technology, Durban, South Africa.
  • Misra M, Kar P, Priyadarshan G, Licata C. 2001. Keratin Protein Nano-fiber for Removal of Heavy Metals and Contaminants. MRS Proceedings 702, U2.1.1 doi:10.1557/PROC-702-U2.1.1.
  • Mohammadi M, Fotovat A, Haghniya G. 2009. Efficiency of sand-soil-organic matter filter, the removal of heavy metals copper, nickel, zinc and chromium from industrial wastewater. Journal of Soil and Water (Agricultural Science and Technology) 262:23−51.
  • Mohan S, Karthikeyan J. 1997. Removal of lignin and tannin color from aqueous solution by adsorption on to activated carbon solution by adsorption on to activated charcoal. Environmental Pollution 97:183−187.
  • Mojiri A. 2011. The potential of corn (Zea mays) for phytoremediation of soil contaminated with cadmium and lead. J Biol Environ Sci 5(13):17−22.
  • Morikawa H, Ozgnr E. 2003. Basic processes in phytoremediation and some applications to air pollution control. Chemosphere 52:1553−1558.
  • Nabi GH, Fazelipishe H. 1998. Adsorption of heavy metals by sawdust. Journal of Environmental Studies 24:1−22.
  • National Research Council (NRC). 2003. Bioavailability of contaminants in soils and sediments. The National Academics Press. 433 pp.
  • Neubauer U, Furrer G, Kayser A, Schulin R. 2000. Siderophores, NTA, and Citrate: Potential SoilAmendments to Enhance Heavy Metal Mobility in .Phytoremediation. International Journal of Phytoremediation 2(4):353–368.
  • Prasad MNV, Freitas HMO. 2003. Metal hyperaccumu lation in plants, biodiversity prospecting for phytoremediation technology. Electronic Journal of Biotechnology 6(3):1−25.
  • Pulford ID, Riddell-Black D, Stewart C. 2002. Heavy Metal Uptake by Willow Clones from Sewage Sludge-Treated Soil: The Potential for Phytoremediation. International Journal of Phytoremediation 4(1):59–72.
  • Robinson B, Brooks R, Clothier B. 1999. Soil amendments affecting nickel and cobalt uptake by Berkheya coddii: potential use for phytomining and phytoremediation. Annals of Botany 84:689−694.
  • Shen ZG, Zhao FJ, McGrath SP. 1997. Uptake and transport of zinc in the hyperaccumulator Thlaspi aerulescens and the nonhyperaccumulator Thlaspi ochroleucum. Plant Cell Environ 20:898–906.
  • Singh SP, Ghosh M. 2003. A comparative study on effect of cadmium chromium and lead on seed germination of weed and accumulator plant species. Indian of Environment Protection 23(5):513−518.
  • Smara A, Delimi R, Chainet E, Sandeaux J. 2007. Removal of heavy metals from diluted mixtures by a hybrid ion-exchange/electrodialysis process. Separation and Purification Technology 57(1):103−110.
  • Tempkin MI, Pyzhev V. 1940. Kinetics of ammonia synthesis on promoted iron catalyst. Acta Physicochimica USSR 12:327–356.
  • Wahi R, Ngaini Z, Jok VU. 2009. Removal of mercury, lead and copper from aqueous solution by activated carbon of palm oil empty fruit bunch. World Applied Sciences Journal 5:84−91.
  • Walker DJ, Clemente R, Bernal MP. 2004. Contrasting effects of manure and compost on soil pH, heavy metal availability and growth of Chenopodium album L. in a soil contaminated by pyretic mine wast. Chemosphere 57:215−224.
  • Webber TN, Chakravarti RK. 1974. Pore and Solid Diffusion Models for fixed bed adsorbers. American Institute of Chemical Engineers Journal 20:228−238.
  • Wong P, Chang L. 1991. Effects of copper, chromium and nickel on growth, photosynthesis and chlorophyll a synthesis of Chloella pyrenoidosa. Environmental Pollution 72:127−13.
  • Yap CK, Ismail A, Tan SG, Omar H. 2002. Correlations between spciation of Cd, Cu, Pb, and Zn in Sediment and their concentration in total soft tissue of green-lipped mussel perna Viridis from the west coase of peninsular Malaysia. Environment International 28:117−126.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.