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Assessment of the effect of reactive materials on the content of selected elements in Indian mustard grown in Cu-contaminated soils

Treść / Zawartość
Identyfikatory
Warianty tytułu
PL
Ocena wpływu materiałów reaktywnych na zawartość wybranych pierwiastków w gorczycy sarepskiej uprawianej na glebie zanieczyszczonej miedzią
Języki publikacji
EN
Abstrakty
EN
Zero-valent iron (ZVI) represent a promising agent for environmental remediation. The research was aimed to determine the influence of copper in doses of 0, 80, 150, 300, and 600 mg Cu·kg–1 of soil as well as ZVI, and lignite additives on the content of macroelements in the Indian mustard (Brassica juncea (L.) Czern.). The average accumulation of analyzing elements in Indian mustard grown in copper contaminated soil were found to follow the decreasing order Mg > Na > P > Ca > K > N. Soil contamination at 600 mg Cu·kg–1 of soil led to the highest increase in P, Mg, N, and Ca content. The application of ZVI had a positive influence on the average phosphorus and potassium content of Indian mustard. Moreover, the application of ZVI and lignite had a positive influence on the average Mg and Ca content in the above-ground parts of Indian mustard. From the analyzed reactive materials, the application of lignite was shown to be the most effective resulting in the decrease in the average nitrogen and calcium content when compared to the control crop. Calcium content in plants from the control group, without the addition of zero-valent iron, and powered lignite (control), was positively correlated with increasing doses of copper.
PL
Zakres badań obejmował określenie wpływu zanieczyszczenia gleby miedzią (0, 80, 150, 300 i 600 mg Cu·kg–1) oraz dodatku żelaza elementarnego (ZVI) i węgla brunatnego na zawartość wybranych makroelementów w gorczycy sarepskiej (Brassica juncea (L.) Czern.). Średnia zawartość analizowanych makroskładników w gorczycy rosnącej na glebie zanieczyszczonej miedzią kształtowała się następująco: Mg > Na > P > Ca > K > N. Gleba zanieczyszczona w dawce 600 mg Cu·kg–1 spowodowała zwiększenie zawartości P, Mg, N i Ca. Dodatek żelaza elementarnego (ZVI) wywarł pozytywny wpływ na średnią zawartość fosforu i potasu w Brassica juncea. Ponadto ZVI i węgiel brunatny wpływały pozytywnie na średnią zawartość Mg i Ca w częściach nadziemnych analizowanej rośliny. Spośród dodawanych do gleby analizowanych materiałów reaktywnych węgiel brunatny spowodował największy wzrost zawartości azotu i wapnia w częściach nadziemnych analizowanej rośliny. Zawartość wapnia w roślinach rosnących w grupie kontrolnej (bez dodatku żelaza elementarnego i węgla brunatnego) była dodatnio skorelowana ze wrastającym zanieczyszczeniem gleby miedzią.
Wydawca
Rocznik
Tom
Strony
53--60
Opis fizyczny
Bibliogr. 36 poz., rys., tab.
Twórcy
  • Warsaw University of Life Sciences – SGGW, Faculty of Civil and Environmental Engineering
autor
  • Warsaw University of Life Sciences – SGGW, Faculty of Civil and Environmental Engineering
autor
  • University of Warmia and Mazury in Olsztyn, Faculty of Environmental Management and Agriculture
autor
  • Warsaw University of Life Sciences – SGGW, Faculty of Civil and Environmental Engineering
autor
  • Artvin Coruh University, Faculty of Engineering, Seyitler Campus 08000 Artvin, Turkey
Bibliografia
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  • FRONCZYK J., PAWLUK K. 2014. Hydraulic performance of zero-valent iron and nano-sized zero-valent iron permeable reactive barriers – laboratory test. Annals of Warsaw University of Life Sciences-SGGW. Land Reclamation. Vol. 46. Iss. 1 p. 33–42.
  • HWANG Y., SALATAS A., MINES P.D., JAKOBSEN M.H., ANDERSEN H.R. 2016. Graduated characterization method using a multi-well microplate for reducing reactivity of nanoscale zero valent iron materials. Applied Catalysis B: Environmental. Vol. 181 p. 314–320.
  • JIN J., SUN K., WANG Z., HAN L., PAN Z., WU F., LIU X., ZHAO Y., XING B. 2015. Characterization and phthalate esters sorption of organic matter fractions isolated from soils and sediments. Environmental Pollution. Vol. 206 p. 24–31.
  • KABATA-PENDIAS A., PENDIAS H. 2001. Trace elements in soils and plants. 3rd ed. Boca Raton, London, New York, Washington DC. CRC Press LLC. ISBN 0-8493-1575-1 pp. 413.
  • KALEMBASA S., WYSOKIŃSKI A. 2002. Wpływ nawożenia mieszaniną osadów ściekowych z popiołem z węgla brunatnego lub CaO na plon i skład chemiczny roślin. Cz. II. Zawartość wybranych makroelementów [The influence of fertilization with sewage sludges mixed with the brown coal or with CaO on the yield and chemical composition of the plants. Part II. The content of selected micronutrients in plants]. Zeszyty Problemowe Postępów Nauk Rolniczych. Z. 482 p. 257–263.
  • KIRSCHLING T.L., GREGORY K.B., MINKLEY E.G., LOWRY G.V., TILTON R.D. 2010. Impact of nanoscale zero valent iron on geochemistry and microbial populations in trichloroethylene contaminated aquifer materials. Environmental Science and Technology. Vol. 44 p. 3474–3480.
  • KLUTE A. 1996. Methods of soil analysis. Madison. American Society of Agronomy. Agronomy Monograph 9.
  • KOZERA W., NOWAK K., MAJCHERCZAK E., BARCZAK B. 2006. Effect of foliar fertilization with micronutrients on content of macronutrients in potato tubers. Journal of Elementology. Vol. 11. Iss. 1 p. 29–34.
  • KWIATKOWSKA J., SOKOŁOWSKA Z., MACIEJEWSKA A. 2006. Selected physical and chemical properties for evaluating brown coals used for soil reclamation. International Agrophysics. Vol. 20. Iss. 2 p. 121–128.
  • LEMBERKOVICS E., CZINNER E., SZENTMIHALYI K., BALAZS A., SZOKE E. 2002. Comparative evaluation of Helichrysi flos herbal extracts as dietary sources of plant polyphenols, and macro- and microelements. Food Chemistry. Vol. 78 p. 119–127.
  • LESZCZYŃSKA D., KWIATKOWSKA-MALINA J. 2011. Effect of organic matter from various sources on yield and quality of plant on soils contaminated with heavy metals. Ecological Chemistry and Engineering S. Vol. 18. Iss. 4 p. 501–507.
  • LOPAREVA-POHU A.,VERDIN A., GARÇON G., LOUNÈS-HADJ SAHRAOUI A., POURRUT B., DEBIANE D., WATERLOT C., LARUELLE F., BIDAR G., DOUAY F., SHIRALI P. 2011. Influence of fly ash aided phytostabilisation of Pb, Cd and Zn highly contaminated soils on Lolium perenne and Trifolium repens metal transfer and physiological stress. Environmental Pollution. Vol. 159. Iss. 6 p. 1721–1729.
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  • PULS W., PAUL C.J., POWELL R.M. 1999. The application of in situ permeable reactive (zero-valent iron) barrier technology for the remediation of chromate – contaminated ground water: a field test. Applied Geochemistry. Vol. 14 p. 989–1000.
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  • SANTANA N.A., FERREIRA P.A.A., SORIANI H.H., BRUNETTO G., NICOLOSO F.T., ANTONIOLLI Z.I., JACQUES R.J.S. 2015. Interaction between arbuscular mycorrhizal fungi and vermicompost on copper phytoremediation in a sandy soil. Applied Soil Ecology. Vol. 96 p. 172–182.
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  • ZAHEER I.E., ALI S., RIZWAN M., FARID M., SHAKOOR M.B., GILL R.A., NAJEEB U., IQBAL N., AHMAD R. 2015. Citric acid assisted phytoremediation of copper by Brassica napus L. Ecotoxicology and Environmental Safety. Vol. 120 p. 310–317.
  • ZHANG W. 2003. Nanoscale iron particles for environmental remediation: An overview. Journal of Nanoparticle Research. Vol. 5 p. 323–332.
  • ZORRIG W., SHAHZAD Z., ABDELLY C., BERTHOMIEU P. 2012. Calcium enhances cadmium tolerance and decreases cadmium accumulation in lettuce (Lactuca sativa). African Journal of Biotechnology. Vol. 11 p. 8441–8448.
  • XU I., ZHAO D. 2007. Reductive immobilization of chromate in water and soil using stabilized iron nanoparticles. Water Research. Vol. 41. Iss. 10 p. 2101–2108.
Uwagi
PL
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-10884864-1a28-4581-afe5-89719aebef3d
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