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Efficient mercury removal at ultralow metal concentrations by cysteine functionalized carbon-coated magnetite
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Efficient mercury removal at ultralow metal concentrations by cysteine functionalized carbon-coated magnetiteDownload
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Document Title
Efficient mercury removal at ultralow metal concentrations by cysteine functionalized carbon-coated magnetite
Author
Srikhaow A., Butburee T., Pon-On W., Srikhirin T., Uraisin K., Suttiponpanit K., Chaveanghong S., Smith S.M.
Name from Authors Collection
Affiliations
Faculty of Science, Mahidol University, Rama VI Rd., Rajathevi, Bangkok, 10400, Thailand; National Nanotechnology Center (NANOTEC), National Science and Technology Development Agency, 111 Thailand Science Park Phaholyothin Rd., Klong Nueng, Klong Luang, Pathumthani, 12120, Thailand; Department of Physics, Faculty of Science, Kasetsart University, 50 Ngam Wong Wan Rd., Ladyaow, Chatuchak, Bangkok, 10900, Thailand; Department of Physics, Faculty of Science, Mahidol University, Rama VI Rd., Rajathevi, Bangkok, 10400, Thailand; Department of Chemistry and Center of Excellence for Innovation in Chemistry, Faculty of Science, Mahidol University, Rama VI Rd., Rajathevi, Bangkok, 10400, Thailand; Environmental Technology Research Department, Innovation Institute, PTT Public Company Limited, 71/1 M.2 Phaholyothin Rd., Sanubtub, Wangnoi, Ayutthaya, 13170, Thailand; Center of Sustainable Energy and Green Materials and Department of Chemistry, 999 Phuttamonthon Sai 4 Rd, Salaya, Nakhon Pathom, 73170, Thailand
Type
Article
Source Title
Applied Sciences (Switzerland)
ISSN
20763417
Year
2020
Volume
10
Issue
22
Page
Jan-18
Open Access
Gold
Publisher
MDPI AG
DOI
10.3390/app10228262
Abstract
This work reports the preparation and utility of cysteine-functionalized carbon-coated Fe3 O4 materials (Cys-C@Fe3 O4) as efficient sorbents for remediation of Hg(II)-contaminated water. Efficient removal (90%) of Hg(II) from 1000 ppb aqueous solutions is possible, at very low Cys-C@Fe3 O4 sorbent loadings (0.01 g sorbent per liter of Hg(II) solution). At low metal concentrations (5–100 ppb Hg(II)), where adsorption is typically slow, Hg(II) removal efficiencies of 94–99.4% were achievable, resulting in final Hg(II) levels of <1.0 ppb. From adsorption isotherms, the Hg(II) adsorption capacity for Cys-C@Fe3 O4 is 94.33 mg g−1, around three times that of carbon-coated Fe3 O4 material. The highest partition coefficient (PC) of 2312.5 mgg−1 µM−1 was achieved at the initial Hg (II) concentration of 100 ppb, while significantly high PC values of 300 mgg−1 µM−1 and above were also obtained in the ultralow concentration range (≤20 ppb). Cys-C@Fe3 O4 exhibits excellent selectivity for Hg(II) when tested in the presence of Pb(II), Ni(II), and Cu(II) ions, is easily separable from aqueous media by application of an external magnet, and can be regenerated for three subsequent uses without compromising Hg(II) uptake. Derived from commercially available raw materials, it is highly possible to achieve large-scale production of the functional sorbent for practical applications. © 2020 by the authors. Licensee MDPI, Basel, Switzerland.
Keyword
Adsorption | Magnetite | Mercury | Surface functionalization
Funding Sponsor
Thailand Science Research and Innovation
License
CC BY
Rights
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Publication Source
Scopus
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