CONDE-GONZÁLEZ, José Elías, Eladia M. PEÑA-MÉNDEZ, Alba M. MELIÁN-FERNÁNDEZ, Josef HAVEL and Victoria SALVADÓ. Synthesis, performance and mechanism of nanoporous Fe-(1,3,5-tricarboxylic acid) metal-organic framework in the removal of anionic dyes from water. Environmental Nanotechnology, Monitoring & Management. Elsevier, 2021, vol. 16, December, p. 1-9. ISSN 2215-1532. Available from: https://dx.doi.org/10.1016/j.enmm.2021.100541.
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Basic information
Original name Synthesis, performance and mechanism of nanoporous Fe-(1,3,5-tricarboxylic acid) metal-organic framework in the removal of anionic dyes from water
Authors CONDE-GONZÁLEZ, José Elías, Eladia M. PEÑA-MÉNDEZ (guarantor), Alba M. MELIÁN-FERNÁNDEZ, Josef HAVEL (203 Czech Republic, belonging to the institution) and Victoria SALVADÓ.
Edition Environmental Nanotechnology, Monitoring & Management, Elsevier, 2021, 2215-1532.
Other information
Original language English
Type of outcome Article in a journal
Field of Study 10400 1.4 Chemical sciences
Country of publisher Netherlands
Confidentiality degree is not subject to a state or trade secret
WWW URL
RIV identification code RIV/00216224:14310/21:00128811
Organization unit Faculty of Science
Doi http://dx.doi.org/10.1016/j.enmm.2021.100541
Keywords in English Nano Fe-BTC; MOFs; Water quality; Anionic dyes; Adsorption; D-SPE
Tags rivok
Tags International impact, Reviewed
Changed by Changed by: Mgr. Marie Šípková, DiS., učo 437722. Changed: 6/3/2023 13:29.
Abstract
The direct synthesis of nano-{Fe-BTC} MOFs was performed following green chemistry rules. This nanomaterial has been characterized by several techniques showing structural similarities with commercial Fe-BTC MOFs, although it has greater porosity due to the presence of mesopores and micropores, that can make it an efficient adsorbent for fluorescent anionic dyes through electrostatic and π-π interactions between dye and nano-{Fe-BTC}. The adsorption isotherms fit the Freundlich model: tetrabromo-fluorescein(Br-FL) has the highest KF value, followed by dichloro-fluorescein(Cl-FL) and fluorescein(FL). The kinetic study suggests that the adsorption onto nano-{Fe-BTC} follows the pseudo-second-order model and the adsorption capacities follow the order Br-FL (qe 0.836 mg·g−1) > FL (qe 0.106 mg·g−1) ~Cl-FL (qe 0.100 mg·g−1), pH = 4. The use of methanol (5% NH3) allows recoveries of the dyes from nano-{Fe-BTC} ranging from 90% to100%. The presence of inorganic ions and organic substances in the water solution does not affect the adsorption of the dyes even when possible interfering species were present at concentrations that were up to 109 times higher than that of the dyes. The method was successfully applied to remove the target dyes from spiked water samples, showing the potential of high porous nano-{Fe-BTC} MOFs as a promising adsorbent for the effective removal of dyes from waters.
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