PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
2017 | 26 | 1 |

Tytuł artykułu

Enhanced bio-immobilization of Pb contaminated soil by immobilized bacteria with biochar as carrier

Autorzy

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
This paper examines the potential value of phosphate-solubilizing bacteria(PSB) in the dissolution of soil phosphorus and in the subsequent immobilization of lead (Pb), both in bacterial growth medium and in soil. In growth medium, Pseudomonas chlororaphis showed both phosphate-solubilizing and Pb-immobilizing capability, the immobilization of Pb was attributed to pyromorphite formation, as indicated by X-ray diffraction analysis. P. chlororaphis cannot multiply in soil in the presence of indigenous soil bacteria; however, when the added content of PSB-immobilized biochar (PIB) was equal to or greater than 800 mg/kg, the PSB could proliferate effective and the NH₄NO₃-extractable Pb concentration was decreased to below 1 mg/kg. Therefore, the inoculation of PIB in soil can be used as an alternative technique to Pb immobilization, thereby avoiding secondary pollution arising from the addition of large amounts of phosphorus as a heavy-metal passivator.

Słowa kluczowe

Wydawca

-

Rocznik

Tom

26

Numer

1

Opis fizyczny

p.413-418,fig.,ref.

Twórcy

autor
  • Institute of Hydrogeology and Environmental Geology, Chinese Academy of Geological Sciences, Shijiazhuang 050061, China
autor
  • Institute of Hydrogeology and Environmental Geology, Chinese Academy of Geological Sciences, Shijiazhuang 050061, China
autor
  • Institute of Hydrogeology and Environmental Geology, Chinese Academy of Geological Sciences, Shijiazhuang 050061, China

Bibliografia

  • 1. SILVETTI M., CASTALDI P., HOLM P.E., DEIANA S., LOMBI E.. Leachability bioaccessibility and plant availability of trace elements in contaminated soils treated with industrial byproducts and subjected to oxidative/reductive conditions [J]. Geoderma, 214, 204, 2014.
  • 2. SHAHID M., DUMAT C., ASLAM M., Pinelli E. Assessment of lead speciation by organic ligands using speciation models [J]. Chemical Speciation & Bioavailability, 24 (4), 248, 2012.
  • 3. ALMAROAI Y.A., USMAN A.R.A., AHMAD M., MOON D.H., CHO J.S., JOO Y.K., Ok Y. S. Effects of biochar, cow bone, and eggshell on Pb availability to maize in contaminated soil irrigated with saline water [J]. Environ. Earth Sci. 71 (3), 1289, 2014.
  • 4. SAOIABI S., ACHELHI K., MASSE S., SAOIABI A., LAGHZIZIL A., CORADIN T. Organoapatites for lead removal from aqueous solutions: A comparison between carboxylic acid and aminophosphonate surface modification [J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 419, 180, 2013.
  • 5. MIRETZKY P., FERNANDEZ-CIRELLI A. Phosphates for Pb immobilization in soils: a review [J]. Environmental Chemistry Letters, 6 (3), 121, 2008.
  • 6. DEBELA F., AROCENA J.M., THRING R.W., WHITCOMBE T. Organic acids inhibit the formation of pyromorphite and zn-phosphate in phosphorous amended Pb-and zn-contaminated soil [J]. Journal of environmental management, 16, 156, 2013.
  • 7. HASHIMOTO Y., TAKAOKA M., OSHITA K., TANIDA H. Incomplete transformations of Pb to pyromorphite by phosphate-induced immobilization investigated by X-ray absorption fine structure (XAFS) spectroscopy [J]. Chemosphere, 76 (5), 616, 2009.
  • 8. MANECKI M., BOGUCKA A., BAJDA T., BORKIEWICZ O. Decrease of Pb bioavailability in solis by addition of phosphate ions [J]. Environ. Chem. Lett. 3 (4), 178, 2006.
  • 9. HARRIS J.N., NEW B., MARTIN P.M. Laboratory tests can predict beneficial effects of phosphate-solubilising bacteria on plants [J]. Soil Biol. Biochem. 38, 1521, 2006.
  • 10. LI S., YUAN Z., BI J., WU H. Anthropogenic phosphorus flow analysis of Hefei City, China [J]. Science of the total environment, 408 (23), 5715, 2010.
  • 11. CHEN Z., MA S., LIU L.L. Studies on phosphorus solubilizing activity of a strain of phosphobacteria isolated from chestnut type soil in China [J]. Bioresource technology, 99 (14), 6702, 2008.
  • 12. CHEN Y.P., REKHA P.D., ARUN A.B., SHEN,F. LAI W.A., YOUNG C.C Phosphate solubilizing bacteria from subtropical soil and their tricalcium phosphate solubilizing abilities [J]. Applied soil ecology, 34 (1), 33, 2006.
  • 13. PARK J.H., BOLAN N., MEGHARAJ M., NAIDU R. Concomitant rock phosphate dissolution and lead immobilization by phosphate solubilizing bacteria (Enterobacter sp.) [J]. Journal of environmental management, 92 (4), 1115, 2011.
  • 14. TAMMEORG P., SIMOJOKI A., MÄKELÄ P., ALAKUKKU L., HELENIUS J. Biochar application to a fertile sandy clay loam in boreal conditions: effects on soil properties and yield formation of wheat, turnip rape and faba bean [J]. Plant and soil, 374 (12), 89, 2014.
  • 15. SCHULZ H., DUNST G., GLASER B. Positive effects of composted biochar on plant growth and soil fertility [J]. Agronomy for sustainable development, 33 (4), 817, 2013.
  • 16. JAAFAR N.M., CLODE P.L., ABBOTT L.K. Soil microbial responses to biochars varying in particle size, surface and pore properties [J]. Pedosphere, 25 (5), 770, 2015.
  • 17. LEHMANN J., RILLIG M C., THIES J., MASIELLO C.A. Biochar effects on soil biota - a review [J]. Soil Biology and Biochemistry, 43 (9), 1812, 2011.
  • 18. PANHWAR Q.A., OTHMAN R., RAHMAN Z.A., MEON S. ISMAIL M.R. Isolation and characterization of phosphate-solubilizing bacteria from aerobic rice [J]. African Journal of Biotechnology, 11 (11), 2711, 2014.
  • 19. ABDEL-FATTAH T.M, MAHMOUD M.E., AHMED S.B., HUFF M.D., LEE J.W., KUMAR S. Biochar from woody biomass for removing metal contaminants and carbon sequestration [J]. Journal of Industrial and Engineering Chemistry, 22, 103, 2015.
  • 20. PUEYO M., LOPEZ-SANCHEZ J.F., RAURET G. Assessment of CaCl₂, NaNO₃ and NH₄NO₃ extraction procedures for the study of Cd, Cu, Pb and zn extractability in contaminated soils [J]. Analytica chimica acta, 504 (2), 217, 2004.
  • 21. ZHU Q.H., HUANG D.Y., LIU S.L., LUO Z.C., ZHU, H.H., ZHOU B., CAO X.L. Assessment of single extraction methods for evaluating the immobilization effect of amendments on cadmium in contaminated acidic paddy soil [J]. Plant Soil Environ, 58 (2), 98, 2012.
  • 22. OLSEN S.R. Estimation of available phosphorus in soils by extraction with sodium bicarbonate [J]. 1954.
  • 23. BIEDERMAN L.A., HARPOLE W.S. Biochar and its effects on plant productivity and nutrient cycling: a meta - analysis [J]. GCB bioenergy, 5 (2), 202, 2013.
  • 24. PICCIRILLO C., PEREIRA S.I.A., MARQUES A.P., PULLAR R.C., TOBALDI D.M., PINTADO M.E., CASTRO P.M. Bacteria immobilisation on hydroxyapatite surface for heavy metals removal [J]. Journal of environmental management, 121, 87, 2013.
  • 25. PARK J.H., BOLAN N., MEGHARAJ M., NAIDU R. Isolation of phosphate solubilizing bacteria and their potential for lead immobilization in soil [J]. Journal of hazardous materials, 185 (2), 829, 2011.
  • 26. VAN ZWIETEN L., KIMBER S., MORRIS S., CHAN K.Y., DOWNIE A., RUST J., COWIE A. Effects of biochar from slow pyrolysis of papermill waste on agronomic performance and soil fertility [J]. Plant and soil, 327 (1-2), 235, 2010.
  • 27. JIANG G., LIU Y., HUANG L., FU Q., DENG Y., HU H. Mechanism of lead immobilization by oxalic acid-activated phosphate rocks [J]. Journal of Environmental Sciences, 24 (5), 919, 2012.

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

bwmeta1.element.agro-c18fa0cd-c188-4ab0-a650-c88ae508e2b7
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.