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Enhanced Kinetic Removal of Ciprofloxacin onto Metal-Organic Frameworks by Sonication, Process Optimization and Metal Leaching Study
- Source :
- Nanomaterials, Volume 9, Issue 10, Nanomaterials, Vol 9, Iss 10, p 1422 (2019)
- Publication Year :
- 2019
- Publisher :
- MDPI AG, 2019.
-
Abstract
- Metal-organic frameworks (MOFs) are currently recognized as unique platforms for environmental studies. This study evaluated the potential of nine MOFs from ZIF-8, ZIF-67, and UIO-66 families for the removal of ciprofloxacin (CIP), a toxic, bio-accumulative, and persistent fluoroquinolone antibiotic. ZIF-67-SO4, with a rhombic crystalline morphology and 1375 m2/g BET surface area, has the highest CIP adsorption efficiency among the studied MOFs. The mathematical sorption model predicted that the highest CIP removal (99.2%) occurs when adsorbent dose, pH, and agitation time are adjusted to 6.82, 832.4 mg/L, and 39.95 min, respectively. Further studies revealed that the CIP adsorbed onto ZIF-67-SO4 in monolayer (qmax: 2537.5 mg/g) and chemisorption controlled the rate of the process. Mass transfer kinetic coefficients improved significantly by sonication at 35 KHz in comparison with mechanical agitation. Thermodynamic parameters (minus signs of ∆G&deg<br />[7.8 to 14.2], positive signs of ∆H&deg<br />(58.9 KJ/mol), and ∆S&deg<br />(0.23 KJ/mol&middot<br />K)) demonstrated the spontaneous, endothermic, and chemical sorption of CIP. The level of cobalt leached from ZIF-67-SO4 structure varied 1.2&ndash<br />4.5 mg/L, depending on pH, mixing time, and agitation type. In conclusion, the excellent adsorption properties of ZIF-67-SO4 for CIP, made it an outstanding candidate for environmental protection purposes.
- Subjects :
- sonication
General Chemical Engineering
Sonication
kinetic
chemistry.chemical_element
Sorption
Endothermic process
Article
lcsh:Chemistry
metal organic frameworks (MOFs)
Adsorption
lcsh:QD1-999
chemistry
adsorption
ciprofloxacin
Chemisorption
Mass transfer
metal leaching
General Materials Science
Cobalt
Nuclear chemistry
BET theory
Subjects
Details
- ISSN :
- 20794991
- Volume :
- 9
- Database :
- OpenAIRE
- Journal :
- Nanomaterials
- Accession number :
- edsair.doi.dedup.....4b69fb8f44e58ca620a81837695e04f9
- Full Text :
- https://doi.org/10.3390/nano9101422