situ dechlorination of trichloroethene contaminated groundwater. J Hazard Mater 300:48–57.
https://doi.org/10.1016/j.jhazmat.2015.06.055
Agathos S, Reineke W (eds) (2003) Biotechnology for the environment: soil remediation. Focus on
biotechnology, vol 3B, 1st edn. Springer, Dordrecht
Dolinová I, Czinnerová M, Dvořák L, Stejskal V, Ševců A, Černík M (2016) Dynamics of
organohalide-respiring bacteria and their genes following in-situ chemical oxidation of chlorinated ethenes and biostimulation. Chemosphere 157:276–285. https://doi.org/10.1016/j.
chemosphere.2016.05.030
Kvapil P, Gaňa P, Růžička P (2011) Souhrnná zpráva provozu sanace podzemních vod mraku 5 za
rok 2010: SPOLCHEMIE Ústí nad Labem. Aquatest a.s., Praha
Kvapil P, Valerián R, Růžička P, Gaňa P (2014) Souhrnná zpráva za rok 2013: Opatření vedoucí k
nápravě starých ekologických zátěží v areálu společnosti SPOLCHEMIE Ústí nad Labem.
Aquatest a.s., Praha
Lewin K, Blakey NC, Cooke DA (1990) The validation of methodology in the determination of
methane in water – final report. Water Research Centre, Marlow
Paul L, Smolders E (2014) Inhibition of iron (III) minerals and acidification on the reductive
dechlorination of trichloroethylene. Chemosphere 111:471–477. https://doi.org/10.1016/j.
chemosphere.2014.04.057
Stroo HF, Ward CH (eds) (2010) In situ remediation of chlorinated solvent plumes, SERDP ESTCP
environmental remediation technology, 1st edn. Springer, New York. https://doi.org/10.1007/
978-1-4419-1401-9
Vacková N (2018) Comparison of effectiveness of three application of zero-valent iron
nanoparticles for remediation of groundwater polluted by chlorinated ethenes. Master’s thesis.
Charles University, Faculty of Science, Prague, Czech Republic
5 Field Study I: In Situ Chemical Reduction Using Nanoscale Zero-. . .
103
Précédent

- 124/656

Suivant