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  4. Aerobic and anaerobic biosynthesis of nano-selenium for remediation of mercury contaminated soil
 
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Aerobic and anaerobic biosynthesis of nano-selenium for remediation of mercury contaminated soil

Journal
Chemosphere
Journal Volume
170
Pages
266-273
Date Issued
2017
Author(s)
Wang X.
Zhang D.
Pan X.
Lee D.-J.  
Al-Misned F.A.
Mortuza M.G.
Gadd G.M.
DOI
10.1016/j.chemosphere.2016.12.020
URI
https://scholars.lib.ntu.edu.tw/handle/123456789/408120
URL
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85006759609&doi=10.1016%2fj.chemosphere.2016.12.020&partnerID=40&md5=f1bebbddde67440ae0f10fa1a095198c
Abstract
Selenium (Se) nanoparticles are often synthesized by anaerobes. However, anaerobic bacteria cannot be directly applied for bioremediation of contaminated top soil which is generally aerobic. In this study, a selenite-reducing bacterium, Citrobacter freundii Y9, demonstrated high selenite reducing power and produced elemental nano-selenium nanoparticles (nano-Se0) under both aerobic and anaerobic conditions. The biogenic nano-Se0 converted 45.8¡V57.1% and 39.1¡V48.6% of elemental mercury (Hg0) in the contaminated soil to insoluble mercuric selenide (HgSe) under anaerobic and aerobic conditions, respectively. Addition of sodium dodecyl sulfonate enhanced Hg0 remediation, probably owing to the release of intracellular nano-Se0 from the bacterial cells for Hg fixation. The reaction product after remediation was identified as non-reactive HgSe that was formed by amalgamation of nano-Se0 and Hg0. Biosynthesis of nano-Se0 both aerobically and anaerobically therefore provides a versatile and cost-effective remediation approach for Hg0-contaminated surface and subsurface soils, where the redox potential often changes dramatically. ? 2016
Subjects
Bioremediation
Mercury
Metal immobilization
Selenium
Selenium nanoparticles
SDGs

[SDGs]SDG3

[SDGs]SDG15

Type
journal article

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