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Metody szacowania biodostępności metali w układzie gleba-roślina

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Warianty tytułu
Języki publikacji
PL
Abstrakty
Rocznik
Strony
12--16
Opis fizyczny
Bibliogr. 34 poz., wykr.
Twórcy
  • Politechnika Warszawska, Wydział Instalacji Budowlanych, Hydrotechniki i Inżynierii Środowiska, 00-653 Warszawa, Nowowiejska 20
Bibliografia
  • [1] Anju M, Banerjee DK: Associations of cadmium, zinc, and lead in soils from a lead and zinc mining area as studied by single and sequential extractions. Environ Monit Assess., 176(1-4):67-85, 2011.
  • [2] Chojnacka K., Chojnacki A., Górecka H., Górecki H.: Bioavailability of heavy metals from polluted soils to plants. Science of the Total Environment, 337: 175-182, 2004.
  • [3] Certificate of analysis: TILL- 1, TILL-2, TILL-3 and TILL-4 Geochemical Soil and TILL Reference Materials, Canada, 1995.
  • [4] Feng J., Zhao J., Bian X., Zhang W.: Spatial distribution and controlling factors of heavy metals contents in paddy soil and crop grains of rice-wheat cropping system along highway in East China. Environ Geochem Health. 34(5):605-14, 2012 (a).
  • [5] Feng M.H., Shan X.Q., Zhang S., Wen B.: A comparison of the rhizosphere-based method with DTPA, EDTA, CaCl2, and NaNO3 extraction methods for prediction of bioavailability of metals in soil to barley. Environ. Pollut., 137: 231-240, 2005(b)
  • [6] Feng M.H., Shan X.Q., Zhang S., Wen B.:A comparison of a rhizosphere-based method with other one-step extraction methods for assessing the bioavailability of soil metals to wheat. Chemosphere, 59: 939-949, 2005(c).
  • [7] Fuentes A., José Sáez M., Aguilar M.I., Belén Pérez- Marı́n A., Ortuño F.J., Meseguer V.F.:Ecotoxicity, phytotoxicity and extractability of heavy metals from different stabilised sewage sludges. Environ. Pollut., 143: 355-360, 2006
  • [8] Gupta A.K., Sinha S.: Chemical fractionation and heavy metals accumulation in the plants of Sesamum indicum (L.) var. T55 grown on soil amended with tannery sludge: selection of single extractants. Chemosphere, 64: 161- 173, 2006.
  • [9] Gupta A.K., Sinha S.: Assessment of single extraction methods for the prediction of bioavailability of metals to Brassica juncea L. Czern. (var. Vaibhav) grown on tannery waste contaminated soil Journal of Hazardous Materials, 149(1): 144-150, 2007.
  • [10] Hammer D., Keller C.: Changes in the rhizosphere of metal-accumulating plants evidenced by chemical extractants. J. Environ. Qual., 31: 1561-1569, 2002.
  • [11] Hani H., Gupta S.: Chemical methods for the biological characterization of metal in sludge and soil, Commission of the European Communities, Report 10361, 157-167, 1996.
  • [12] Houba V.J.G., Lexmond Th.M., Novozamsky J.J., Van Der Lee J.: State of the art and futures developments in soil analysis for bioavailability assessment. Sc. Total Environ., 178: 21-28, 1996.
  • [13] Houba V.J.G., Temminghoff E.J.M., Gaikhorst G.A., Van Vark W. Soil analysis procedures using 0,01 M calcium chloride as extraction reagent. Comm. Soil Sci.Plant Anal., 31: 1299-1396, 2000.
  • [14] Kabata-Pendias A.: Zawartości metali śladowych w glebach. Kraj. Konf. Geologiczne Aspekty Ochrony Środowiska, Wyd. AGH, 25-29, Kraków 1991.
  • [15] Kandziora-Ciupa M., Ciepal R., Nadgórska-Socha A., Barczyk G.: A comparative study of heavy metal accumulation and antioxidant responses in Vaccinium myrtillus L. leaves in polluted and non-polluted areas. Environmental Science and Pollution Research, 20(7): 4920-4932, 2013.
  • [16] Korzeniowska J., Stanisławska- Golubiak E.: A comparison of the suitability of several methods to estimate the bioavailability of elements in soils to plants. Fresenius Environmental Bulletin, 22(4): 943-948, 2013.
  • [17] Krishnamurti G.S.R., Smith L.H., Naidu R.: Method for assessing plant-available cadmium in soils. Aust. J. Soil Res., 38: 823-836, 2000.
  • [18] Lee D.Y., Zheng H.C.: Simultaneous extractions of soil phytoavailable cadmium, copper and lead by chelating resin membrane. Plant Soil, 164: 19-23, 1994.
  • [19] Leece D.R., Low G.K.C., Warne M.S., Manning T.M., Chapman J.C., Koop K.: Opportunities for expanded use of soil, plant and water analysis in environment management. Comm. Soil Sci. Plant Anal., 31: 2185-2200, 2000.
  • [20] McBride M.B., Richards B.K., Steenhuis T.: Bioavailability and crop uptake of trace elements in soil columns amended with sewage sludge products. Plant Soil, 262: 71-84, 2004.
  • [21] Niesiobędzka Krystyna: Mobilność i biodostępność wybranych metali w ekosystemach trawiastych. Prace Naukowe, Inżynieria Środowiska, z. 77, Oficyna Wydawnicza Politechniki Warszawskiej, Warszawa 2018 (ISBN 978-83- 7814-756-5)
  • [22] Niesiobędzka Krystyna: Akumulacja miedzi, ołowiu i cynku w glebach północnego Mazowsza. Laboratoria Aparatura Badania, 4, 2019 (ISSN-1427-5619) (a)
  • [23] Niesiobędzka Krystyna: Bioakumulacja Cu, Pb i Zn w Festuca rubra na obszarze północnego Mazowsza Laboratoria Aparatura Badania, 5, 2019 (ISSN-1427-5619) (b)
  • [24] Niesiobędzka Krystyna: Specjacja metali ciężkich w glebach i procedury stosowane w analityce specjacyjnej. Laboratoria Aparatura Badania, 3:6- 13, 2019 (ISSN-1427-5619)(c).
  • [25] Novovozamsky I., Lexmond Th.M., Houba V.J.G.: A single extraction procedure of soil for evaluation of uptake of some heavy metals by plant. Int. J. Environ. Anal. Chem., 51: 47-58, 1992.
  • [26] Ociepa-Kubicka A., Ociepa E.: Toksyczne oddziaływanie metali ciężkich na rośliny, zwierzęta i ludzi. Inż. i Ochr. Środ., 15(2):169-180, 2012.
  • [27] Pauget B., Gimbert F., Scheifler, R., Coeurdassier M., de Vaufleury A.: Soil parameters are key factors to predict metal bioavailability to snails based on chemical extractant data. Science of The Total Environment, 431: 413-425, 2012; DOI: 10.1016/j.scitotenv. 2012.05.048
  • [28] Pueyo M., Rauret G., Luck D., Yli-Halla M., Muntau H., Quevauville P.H., Lopez-Sanchez J.F.: Assessment of CaCl2, NH4NO3 and NaNO3 extraction procedures for the study of Cd, Pb and Zn extractability in contaminated soils. Anal. Chim. Acta, 504: 217-226, 2004.
  • [29] Quevauviller P., Rauret G., Lopez-Sanchez J. F., Rubio R., Ure A., Muntau H.: Certification of trace metal extractable contents in a sediment reference material (CRM 601) following a three-step sequential extraction procedure, Science of the Total Environment, 205: 223-234, 1997.
  • [30] Rao C.R.M., Sahuquillo A., Lopez Sanchez J.F.: A Review of the Different Methods Applied in Environmental Geochemistry For Single and Sequential Extraction of Trace Elements in Soils and Related Materials. Water Air Soil Pollut, 189:291-333, 2008.
  • [31] Singh S., Sinha S.: Accumulation of metals and its effects in Brassica juncea L. Czern. (Cv. Rohini) grown on various amendment of tannery waste. Ecotox. Environ. Safety, 62: 118-127, 2005.
  • [32] Sinha S., Gupta A.K., Bhatt K., Pandey K., Rai U.N., Singh K.P.: Distribution of metals in the edible plants grown at Jajmau, Kanpur (India) receiving treated tannery wastewater: relation with physico- -chemical properties of the soil. Environ. Monit. Assess., 115: 1-22, 2006.
  • [33] Van Gestel 2008]. Van Gestel C. A..M.: Physico-chemical and biological parameters determine metal bioavailability in soils. Science of the Total Environment, 406: 385-395, 2008.
  • [34] Ure A.M.: Single extraction schemes for soil analysis and related applications. Sci. Total Environ. 178: 3-10. 1996.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-74207200-2775-4f2e-9c6d-b3af6cfdffbe
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