Cargando…

Removal of MS2 and fr Bacteriophages Using MgAl(2)O(4)-Modified, Al(2)O(3)-Stabilized Porous Ceramic Granules for Drinking Water Treatment

Point-of-use ceramic filters are one of the strategies to address problems associated with waterborne diseases to remove harmful microorganisms in water sources prior to its consumption. In this study, development of adsorption-based ceramic depth filters composed of alumina platelets was achieved u...

Descripción completa

Detalles Bibliográficos
Autores principales: Yüzbasi, Nur Sena, Krawczyk, Paweł A., Domagała, Kamila W., Englert, Alexander, Burkhardt, Michael, Stuer, Michael, Graule, Thomas
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9145336/
https://www.ncbi.nlm.nih.gov/pubmed/35629797
http://dx.doi.org/10.3390/membranes12050471
_version_ 1784716262363889664
author Yüzbasi, Nur Sena
Krawczyk, Paweł A.
Domagała, Kamila W.
Englert, Alexander
Burkhardt, Michael
Stuer, Michael
Graule, Thomas
author_facet Yüzbasi, Nur Sena
Krawczyk, Paweł A.
Domagała, Kamila W.
Englert, Alexander
Burkhardt, Michael
Stuer, Michael
Graule, Thomas
author_sort Yüzbasi, Nur Sena
collection PubMed
description Point-of-use ceramic filters are one of the strategies to address problems associated with waterborne diseases to remove harmful microorganisms in water sources prior to its consumption. In this study, development of adsorption-based ceramic depth filters composed of alumina platelets was achieved using spray granulation (calcined at 800 °C). Their virus retention performance was assessed using cartridges containing granular material (4 g) with two virus surrogates: MS2 and fr bacteriophages. Both materials showed complete removal, with a 7 log(10) reduction value (LRV) of MS2 up to 1 L. MgAl(2)O(4)-modified Al(2)O(3) granules possessed a higher MS2 retention capacity, contrary to the shortcomings of retention limits in pure Al(2)O(3) granules. No significant decline in the retention of fr occurred during filtration tests up to 2 L. The phase composition and morphology of the materials were preserved during filtration, with no magnesium or aluminum leakage during filtration, as confirmed by X-ray diffractograms, electron micrographs, and inductively coupled plasma-optical emission spectrometry. The proposed MgAl(2)O(4)-modified Al(2)O(3) granular ceramic filter materials offer high virus retention, achieving the criterion for virus filtration as required by the World Health Organization (LRV ≥ 4). Owing to their high thermal and chemical stability, the developed materials are thus suitable for thermal and chemical-free regeneration treatments.
format Online
Article
Text
id pubmed-9145336
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-91453362022-05-29 Removal of MS2 and fr Bacteriophages Using MgAl(2)O(4)-Modified, Al(2)O(3)-Stabilized Porous Ceramic Granules for Drinking Water Treatment Yüzbasi, Nur Sena Krawczyk, Paweł A. Domagała, Kamila W. Englert, Alexander Burkhardt, Michael Stuer, Michael Graule, Thomas Membranes (Basel) Article Point-of-use ceramic filters are one of the strategies to address problems associated with waterborne diseases to remove harmful microorganisms in water sources prior to its consumption. In this study, development of adsorption-based ceramic depth filters composed of alumina platelets was achieved using spray granulation (calcined at 800 °C). Their virus retention performance was assessed using cartridges containing granular material (4 g) with two virus surrogates: MS2 and fr bacteriophages. Both materials showed complete removal, with a 7 log(10) reduction value (LRV) of MS2 up to 1 L. MgAl(2)O(4)-modified Al(2)O(3) granules possessed a higher MS2 retention capacity, contrary to the shortcomings of retention limits in pure Al(2)O(3) granules. No significant decline in the retention of fr occurred during filtration tests up to 2 L. The phase composition and morphology of the materials were preserved during filtration, with no magnesium or aluminum leakage during filtration, as confirmed by X-ray diffractograms, electron micrographs, and inductively coupled plasma-optical emission spectrometry. The proposed MgAl(2)O(4)-modified Al(2)O(3) granular ceramic filter materials offer high virus retention, achieving the criterion for virus filtration as required by the World Health Organization (LRV ≥ 4). Owing to their high thermal and chemical stability, the developed materials are thus suitable for thermal and chemical-free regeneration treatments. MDPI 2022-04-27 /pmc/articles/PMC9145336/ /pubmed/35629797 http://dx.doi.org/10.3390/membranes12050471 Text en © 2022 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
Yüzbasi, Nur Sena
Krawczyk, Paweł A.
Domagała, Kamila W.
Englert, Alexander
Burkhardt, Michael
Stuer, Michael
Graule, Thomas
Removal of MS2 and fr Bacteriophages Using MgAl(2)O(4)-Modified, Al(2)O(3)-Stabilized Porous Ceramic Granules for Drinking Water Treatment
title Removal of MS2 and fr Bacteriophages Using MgAl(2)O(4)-Modified, Al(2)O(3)-Stabilized Porous Ceramic Granules for Drinking Water Treatment
title_full Removal of MS2 and fr Bacteriophages Using MgAl(2)O(4)-Modified, Al(2)O(3)-Stabilized Porous Ceramic Granules for Drinking Water Treatment
title_fullStr Removal of MS2 and fr Bacteriophages Using MgAl(2)O(4)-Modified, Al(2)O(3)-Stabilized Porous Ceramic Granules for Drinking Water Treatment
title_full_unstemmed Removal of MS2 and fr Bacteriophages Using MgAl(2)O(4)-Modified, Al(2)O(3)-Stabilized Porous Ceramic Granules for Drinking Water Treatment
title_short Removal of MS2 and fr Bacteriophages Using MgAl(2)O(4)-Modified, Al(2)O(3)-Stabilized Porous Ceramic Granules for Drinking Water Treatment
title_sort removal of ms2 and fr bacteriophages using mgal(2)o(4)-modified, al(2)o(3)-stabilized porous ceramic granules for drinking water treatment
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9145336/
https://www.ncbi.nlm.nih.gov/pubmed/35629797
http://dx.doi.org/10.3390/membranes12050471
work_keys_str_mv AT yuzbasinursena removalofms2andfrbacteriophagesusingmgal2o4modifiedal2o3stabilizedporousceramicgranulesfordrinkingwatertreatment
AT krawczykpaweła removalofms2andfrbacteriophagesusingmgal2o4modifiedal2o3stabilizedporousceramicgranulesfordrinkingwatertreatment
AT domagałakamilaw removalofms2andfrbacteriophagesusingmgal2o4modifiedal2o3stabilizedporousceramicgranulesfordrinkingwatertreatment
AT englertalexander removalofms2andfrbacteriophagesusingmgal2o4modifiedal2o3stabilizedporousceramicgranulesfordrinkingwatertreatment
AT burkhardtmichael removalofms2andfrbacteriophagesusingmgal2o4modifiedal2o3stabilizedporousceramicgranulesfordrinkingwatertreatment
AT stuermichael removalofms2andfrbacteriophagesusingmgal2o4modifiedal2o3stabilizedporousceramicgranulesfordrinkingwatertreatment
AT graulethomas removalofms2andfrbacteriophagesusingmgal2o4modifiedal2o3stabilizedporousceramicgranulesfordrinkingwatertreatment