Use of Biopolymer Entrapped Sulfate Reducing Bacteria and Metal Nanoparticles for Effective Aqueous Sulfate Removal

Sulfate reducing bacteria (SRB) isolated from activated sludge were used to investigate sulfate removal from aqueous solution using calcium alginate entrapped SRB in batch studies with ethanol and lactose as the carbon sources. The interferences of pH, temperature, Al3+, Cu2+, and Zn2+ on sulfate re...

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Main Author: Cisse, Seydou
Format: Others
Published: North Dakota State University 2018
Online Access:https://hdl.handle.net/10365/27234
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spelling ndltd-ndsu.edu-oai-library.ndsu.edu-10365-272342020-06-06T15:17:45Z Use of Biopolymer Entrapped Sulfate Reducing Bacteria and Metal Nanoparticles for Effective Aqueous Sulfate Removal Cisse, Seydou Sulfate reducing bacteria (SRB) isolated from activated sludge were used to investigate sulfate removal from aqueous solution using calcium alginate entrapped SRB in batch studies with ethanol and lactose as the carbon sources. The interferences of pH, temperature, Al3+, Cu2+, and Zn2+ on sulfate removal were also investigated. Further, sulfate removal experiments were conducted with co-entrapped SRB and nanoscale zero-valent iron (NZVI) and separately entrapped SRB and NZVI. Results indicate that EntSRB can effectively remove sulfate from aqueous solution. 88-95% sulfate removal was achieved. Both ethanol and lactose worked well as carbon sources for entrapped bacteria. Interference studies indicated low sulfate removal in the presence of 25-50 mg/L of aluminum and zinc. Low pH (pH≤ 4) and low temperature (5?C) decreased sulfate reduction. NZVI appeared to have negative effects on SRB. Loading of 0.05 and 0.1 g of NZVI led to lower SO42- removal as compared to experiments without NZVI. Fulbright Program Fellowship National Science Foundation (NSF, Grant: CCMI-1125674) 2018-01-15T16:14:07Z 2018-01-15T16:14:07Z 2013 text/thesis https://hdl.handle.net/10365/27234 NDSU Policy 190.6.2 application/pdf North Dakota State University
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description Sulfate reducing bacteria (SRB) isolated from activated sludge were used to investigate sulfate removal from aqueous solution using calcium alginate entrapped SRB in batch studies with ethanol and lactose as the carbon sources. The interferences of pH, temperature, Al3+, Cu2+, and Zn2+ on sulfate removal were also investigated. Further, sulfate removal experiments were conducted with co-entrapped SRB and nanoscale zero-valent iron (NZVI) and separately entrapped SRB and NZVI. Results indicate that EntSRB can effectively remove sulfate from aqueous solution. 88-95% sulfate removal was achieved. Both ethanol and lactose worked well as carbon sources for entrapped bacteria. Interference studies indicated low sulfate removal in the presence of 25-50 mg/L of aluminum and zinc. Low pH (pH≤ 4) and low temperature (5?C) decreased sulfate reduction. NZVI appeared to have negative effects on SRB. Loading of 0.05 and 0.1 g of NZVI led to lower SO42- removal as compared to experiments without NZVI. === Fulbright Program Fellowship === National Science Foundation (NSF, Grant: CCMI-1125674)
author Cisse, Seydou
spellingShingle Cisse, Seydou
Use of Biopolymer Entrapped Sulfate Reducing Bacteria and Metal Nanoparticles for Effective Aqueous Sulfate Removal
author_facet Cisse, Seydou
author_sort Cisse, Seydou
title Use of Biopolymer Entrapped Sulfate Reducing Bacteria and Metal Nanoparticles for Effective Aqueous Sulfate Removal
title_short Use of Biopolymer Entrapped Sulfate Reducing Bacteria and Metal Nanoparticles for Effective Aqueous Sulfate Removal
title_full Use of Biopolymer Entrapped Sulfate Reducing Bacteria and Metal Nanoparticles for Effective Aqueous Sulfate Removal
title_fullStr Use of Biopolymer Entrapped Sulfate Reducing Bacteria and Metal Nanoparticles for Effective Aqueous Sulfate Removal
title_full_unstemmed Use of Biopolymer Entrapped Sulfate Reducing Bacteria and Metal Nanoparticles for Effective Aqueous Sulfate Removal
title_sort use of biopolymer entrapped sulfate reducing bacteria and metal nanoparticles for effective aqueous sulfate removal
publisher North Dakota State University
publishDate 2018
url https://hdl.handle.net/10365/27234
work_keys_str_mv AT cisseseydou useofbiopolymerentrappedsulfatereducingbacteriaandmetalnanoparticlesforeffectiveaqueoussulfateremoval
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