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Comparative Studies of Recirculatory Microbial Desalination Cell–Microbial Electrolysis Cell Coupled Systems

The recirculatory microbial desalination cell–microbial electrolysis cell (MDC–MEC) coupled system is a novel technology that generates power, treats wastewater, and supports desalination through eco-friendly processes. This study focuses on the simultaneous efficient removal of Fe(2+) and Pb(2+) in...

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Autores principales: Koomson, Desmond Ato, Huang, Jingyu, Li, Guang, Miwornunyuie, Nicholas, Ewusi-Mensah, David, Darkwah, Williams Kweku, Opoku, Prince Atta
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8470946/
https://www.ncbi.nlm.nih.gov/pubmed/34564478
http://dx.doi.org/10.3390/membranes11090661
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author Koomson, Desmond Ato
Huang, Jingyu
Li, Guang
Miwornunyuie, Nicholas
Ewusi-Mensah, David
Darkwah, Williams Kweku
Opoku, Prince Atta
author_facet Koomson, Desmond Ato
Huang, Jingyu
Li, Guang
Miwornunyuie, Nicholas
Ewusi-Mensah, David
Darkwah, Williams Kweku
Opoku, Prince Atta
author_sort Koomson, Desmond Ato
collection PubMed
description The recirculatory microbial desalination cell–microbial electrolysis cell (MDC–MEC) coupled system is a novel technology that generates power, treats wastewater, and supports desalination through eco-friendly processes. This study focuses on the simultaneous efficient removal of Fe(2+) and Pb(2+) in the MEC and ammonium ions in the MDC. It also evaluates the performances of dual-chambered MEC (DCMEC) and single-chambered MEC (SCMEC), coupled with MDC with Ferricyanide as catholyte (MDCF) in heavy metals (Pb(2+) and Fe(2+)) removal, in addition to the production of voltage, current, and power within a 48-h cycle. The SCMEC has a higher Pb(2+) (74.61%) and Fe(2+) (85.05%) removal efficiency during the 48-h cycle than the DCMEC due to the simultaneous use of microbial biosorption and the cathodic reduction potential. The DCMEC had a higher current density of 753.62 mAm(−2) than that of SCMEC, i.e., 463.77 mAm(−2), which influences higher desalination in the MDCF than in the SCMEC within the 48-h cycle. The MDCF produces a higher voltage (627 mV) than Control 1, MDC (505 mV), as a power source to the two MECs. Stable electrolytes’ pH and conductivities provide a conducive operation of the coupled system. This study lays a solid background for the type of MDC–MEC coupled systems needed for industrial scale-up.
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spelling pubmed-84709462021-09-27 Comparative Studies of Recirculatory Microbial Desalination Cell–Microbial Electrolysis Cell Coupled Systems Koomson, Desmond Ato Huang, Jingyu Li, Guang Miwornunyuie, Nicholas Ewusi-Mensah, David Darkwah, Williams Kweku Opoku, Prince Atta Membranes (Basel) Article The recirculatory microbial desalination cell–microbial electrolysis cell (MDC–MEC) coupled system is a novel technology that generates power, treats wastewater, and supports desalination through eco-friendly processes. This study focuses on the simultaneous efficient removal of Fe(2+) and Pb(2+) in the MEC and ammonium ions in the MDC. It also evaluates the performances of dual-chambered MEC (DCMEC) and single-chambered MEC (SCMEC), coupled with MDC with Ferricyanide as catholyte (MDCF) in heavy metals (Pb(2+) and Fe(2+)) removal, in addition to the production of voltage, current, and power within a 48-h cycle. The SCMEC has a higher Pb(2+) (74.61%) and Fe(2+) (85.05%) removal efficiency during the 48-h cycle than the DCMEC due to the simultaneous use of microbial biosorption and the cathodic reduction potential. The DCMEC had a higher current density of 753.62 mAm(−2) than that of SCMEC, i.e., 463.77 mAm(−2), which influences higher desalination in the MDCF than in the SCMEC within the 48-h cycle. The MDCF produces a higher voltage (627 mV) than Control 1, MDC (505 mV), as a power source to the two MECs. Stable electrolytes’ pH and conductivities provide a conducive operation of the coupled system. This study lays a solid background for the type of MDC–MEC coupled systems needed for industrial scale-up. MDPI 2021-08-27 /pmc/articles/PMC8470946/ /pubmed/34564478 http://dx.doi.org/10.3390/membranes11090661 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Koomson, Desmond Ato
Huang, Jingyu
Li, Guang
Miwornunyuie, Nicholas
Ewusi-Mensah, David
Darkwah, Williams Kweku
Opoku, Prince Atta
Comparative Studies of Recirculatory Microbial Desalination Cell–Microbial Electrolysis Cell Coupled Systems
title Comparative Studies of Recirculatory Microbial Desalination Cell–Microbial Electrolysis Cell Coupled Systems
title_full Comparative Studies of Recirculatory Microbial Desalination Cell–Microbial Electrolysis Cell Coupled Systems
title_fullStr Comparative Studies of Recirculatory Microbial Desalination Cell–Microbial Electrolysis Cell Coupled Systems
title_full_unstemmed Comparative Studies of Recirculatory Microbial Desalination Cell–Microbial Electrolysis Cell Coupled Systems
title_short Comparative Studies of Recirculatory Microbial Desalination Cell–Microbial Electrolysis Cell Coupled Systems
title_sort comparative studies of recirculatory microbial desalination cell–microbial electrolysis cell coupled systems
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8470946/
https://www.ncbi.nlm.nih.gov/pubmed/34564478
http://dx.doi.org/10.3390/membranes11090661
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