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Design of structure of hierarchically porous carbon monoliths with magnetic properties for high efficiency in adsorption of lead (II) ions

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dc.contributor.author Onsri P.
dc.contributor.author Dechtrirat D.
dc.contributor.author Nooeaid P.
dc.contributor.author Eiadua A.
dc.contributor.author Amornpitoksuk P.
dc.contributor.author Chuenchom L.
dc.date.accessioned 2021-04-05T03:01:32Z
dc.date.available 2021-04-05T03:01:32Z
dc.date.issued 2020
dc.identifier.issn 17551307
dc.identifier.other 2-s2.0-85083440718
dc.identifier.uri https://ir.swu.ac.th/jspui/handle/123456789/11958
dc.identifier.uri https://www.scopus.com/inward/record.uri?eid=2-s2.0-85083440718&doi=10.1088%2f1755-1315%2f463%2f1%2f012075&partnerID=40&md5=c7cb5bcb54da9b224d2196f1b46f3335
dc.description.abstract Pb (II) is one of the toxic heavy metal ions, which is released from the industry, especially the manufacture of batteries and electronics-devices. Its release into the water effluents causes environmental problems and affects the humans’ and animals’ health. Adsorption is one of the conventional techniques for removal of Pb (II) in water treatment processes. The adsorbents with effective adsorption properties with their easy operation are then desired. In this study, hierarchically porous carbon monoliths with magnetic properties have been designed and successfully fabricated by incorporating sodium alginate and black liquor in ferric chloride solution. The resulting monoliths have been used to study their adsorption efficiency towards Pb (II) in aqueous solution. The interconnected macroporous structures of the materials were generated by the freeze-drying process, while the increase in microporosity was observed after pyrolysis at 700 °C (SA-BL-Fe-700). SA-BL-Fe-700 showed a magnetization of 8.79 emu/g, and high porosity, with a BET specific surface area of 945.45 m2/g and pore size distribution calculated by DFT was less than 2 nm, which is suitable to adsorb Pb (II) ions. Furthermore, the materials obtained showed a monolith feature in a cylindrical shape with strong mechanical stability, which renders them with the easy operation. The adsorption properties of SA-BL-Fe-700 monolith toward Pb (II) ions demonstrated a maximum adsorption capacity of 75.19 mg/g at pH 5 with retaining the magnetic properties. The study of adsorption behaviours illustrated that equilibrium data and kinetic study fitted with Langmuir isotherm model and pseudo-second-order model, respectively. © 2020 Institute of Physics Publishing. All rights reserved.
dc.subject Adsorption
dc.subject Carbon
dc.subject Chlorination
dc.subject Chlorine compounds
dc.subject Design for testability
dc.subject Effluents
dc.subject Electronics industry
dc.subject Energy conservation
dc.subject Environmental technology
dc.subject Heavy metals
dc.subject Iron compounds
dc.subject Isotherms
dc.subject Lead removal (water treatment)
dc.subject Magnetic properties
dc.subject Magnetism
dc.subject Mechanical stability
dc.subject Metal ions
dc.subject Pore size
dc.subject Porous materials
dc.subject Sodium alginate
dc.subject Water treatment
dc.subject BET specific surface area
dc.subject Conventional techniques
dc.subject Environmental problems
dc.subject Ferric chloride solution
dc.subject Hierarchically porous carbons
dc.subject Langmuir isotherm models
dc.subject Pseudo-second order model
dc.subject Water treatment process
dc.subject Lead compounds
dc.subject Adsorption
dc.subject Carbon
dc.subject Chlorination
dc.subject Chlorine Compounds
dc.subject Effluents
dc.subject Energy Conservation
dc.title Design of structure of hierarchically porous carbon monoliths with magnetic properties for high efficiency in adsorption of lead (II) ions
dc.type Conference Paper
dc.rights.holder Scopus
dc.identifier.bibliograpycitation IOP Conference Series: Earth and Environmental Science. Vol 463, No.1 (2020)
dc.identifier.doi 10.1088/1755-1315/463/1/012075


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