Suárez L, Diez MA, García R, Riera FA (2013) Recovery of Na 4 EDTA from aqueous solutions
using nanofiltration. Sep Purif Technol 118:144–150. https://doi.org/10.1016/j.seppur.2013.06.
046
Subramaniam K, Stepp C, Pignatello JJ, Smets B, Grasso D (2004) Enhancement of polynuclear
aromatic hydrocarbon desorption by complexing agents in weathered soil. Environ Eng Sci
21:515–523. https://doi.org/10.1089/1092875041358485
Sufnarski MD (1999) The regeneration of granular activated carbon using hydrothermal technology. PhD-thesis. University of Texas
Svenson A, Kaj L, Björndal H (1989) Aqueous photolysis of the iron (III) complexes of NTA,
EDTA and DTPA. Chemosphere 18:1805–1808. https://doi.org/10.1016/0045-6535(89)904645
Tandy S, Bossart K, Mueller R, Ritschel J, Hauser L, Schulin R, Nowack B (2004) Extraction of
heavy metals from soils using biodegradable chelating agents. Environ Sci Technol
38:937–944. https://doi.org/10.1021/es0348750
Tandy S, Ammann A, Schulin R, Nowack B (2006) Biodegradation and speciation of residual
SS-ethylenediaminedisuccinic acid (EDDS) in soil solution left after soil washing. Environ
Pollut 142:191–199. https://doi.org/10.1016/j.envpol.2005.10.013
Taylor TP, Pennell KD, Abriola LM, Dane JH (2001) Surfactant enhanced recovery of
tetrachloroethylene from a porous medium containing low permeability lenses: 1. Experimental
studies. J Contam Hydrol 48:325–350. https://doi.org/10.1016/S0169-7722(00)00185-6
ter Laak TL, Barendregt A, Hermens JLM (2007) Grinding and sieving soil affects the availability
of organic contaminants: a kinetic analysis. Chemosphere 69:613–620. https://doi.org/10.1016/
j.chemosphere.2007.02.067
Testa SM, Winegardner DL (2000) Restoration of contaminated aquifers: petroleum hydrocarbons
and organic compounds, 2nd edn. Lewis, Boca Raton, FL
Thiruvenkatachari R, Vigneswaran S, Naidu R (2008) Permeable reactive barrier for groundwater.
Remediation 14:145–156. https://doi.org/10.1016/j.jiec.2007.10.001
Tong T, Elimelech M (2016) The global rise of zero liquid discharge for wastewater management:
drivers, technologies, and future directions. Environ Sci Technol 50:6846–6855. https://doi.org/
10.1021/acs.est.6b01000
Topf M, Ingram T, Mehling T, Brinkmann T, Smirnova I (2013) Product recovery in surfactantbased separation processes: pervaporation of toluene from concentrated surfactant solutions. J
Membr Sci 444:32–40. https://doi.org/10.1016/j.memsci.2013.05.003
Trellu C, Oturan N, Pechaud Y, Hullebusch ED, van Esposito G, Oturan MA (2017) Anodic
oxidation of surfactants and organic compounds entrapped in micelles e Selective degradation
mechanisms and soil washing solution reuse. Water Res 118:1–11. https://doi.org/10.1016/j.
watres.2017.04.013
Tsang DCW, Olds WE, Weber P (2013) Residual leachability of CCA-contaminated soil after
treatment with biodegradable chelating agents and lignite-derived humic substances. J Soil
Sediment 13:895–905. https://doi.org/10.1007/s11368-013-0662-x
Tucker MD, Barton LL, Thomson BM, Wagener BM, Aragon A (1999) Treatment of waste
containing EDTA by chemical oxidation. Waste Manag 19:477–482. https://doi.org/10.1016/
S0956-053X(99)00235-4
Udovic M, Lestan D (2009) Pb, Zn and Cd mobility, availability and fractionation in aged soil
remediated by EDTA leaching. Chemosphere 74:1367–1373. https://doi.org/10.1016/j.
chemosphere.2008.11.013
US Department of Energy (1999) Groundwater and soil cleanup: improving management of
persistent contaminants. National Academy Press, Washington, DC
US EPA (Environmental Protection Agency) (1997) Best management practices (BMPs) for soils
treatment technologies. EPA530-R-97-007. Available at: https://www.epa.gov/hw/best-manage
ment-practices-bmps-soils-treatment-technologies
US EPA (Environmental Protection Agency) (2002) Arsenic treatment technologies for soil, waste,
and water. EPA-542R-02-004
1 Contaminant Mobilization from Polluted Soils: Behavior and Reuse of Leaching. . .
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