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MIL-101-NH2-TFR and MIL-101-NH2-TFR/Cu2+ as novel hybrid materials for efficient adsorption of iodine and reduction of Cr(VI). / Askari, Saeed; Khodaei, Mohammad Mehdi; Benassi, Enrico et al.

In: Materials Today Communications, Vol. 35, 105990, 06.2023.

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APA

Askari, S., Khodaei, M. M., Benassi, E., & Jafarzadeh, M. (2023). MIL-101-NH2-TFR and MIL-101-NH2-TFR/Cu2+ as novel hybrid materials for efficient adsorption of iodine and reduction of Cr(VI). Materials Today Communications, 35, [105990]. https://doi.org/10.1016/j.mtcomm.2023.105990

Vancouver

Askari S, Khodaei MM, Benassi E, Jafarzadeh M. MIL-101-NH2-TFR and MIL-101-NH2-TFR/Cu2+ as novel hybrid materials for efficient adsorption of iodine and reduction of Cr(VI). Materials Today Communications. 2023 Jun;35:105990. doi: 10.1016/j.mtcomm.2023.105990

Author

Askari, Saeed ; Khodaei, Mohammad Mehdi ; Benassi, Enrico et al. / MIL-101-NH2-TFR and MIL-101-NH2-TFR/Cu2+ as novel hybrid materials for efficient adsorption of iodine and reduction of Cr(VI). In: Materials Today Communications. 2023 ; Vol. 35.

BibTeX

@article{1f414c1f26d54a5c98638440d234b169,
title = "MIL-101-NH2-TFR and MIL-101-NH2-TFR/Cu2+ as novel hybrid materials for efficient adsorption of iodine and reduction of Cr(VI)",
abstract = "Today, due to the earnest jeopardies of environmental contaminants from various sources and their deteriorating effects on the ecosystem, the adsorption and reduction of these highly toxic pollutants with an efficient and cost-effective protocol can be considered a desirable phenomenon. Herein, a chromium-based metal-organic framework (MIL-101-NH2) was modified with thiourea and formaldehyde to form a polymeric layer on the surface (MIL-101-NH2-TFR). The resulting nanohybrid, as an adsorbent, was applied for efficient capture of iodine (I2) molecules from cyclohexane solution. MIL-101-NH2-TFR nanohybrid signified a superior adsorption performance for the capture of I2, compared to the pristine MIL-101-NH2, with a theoretical maximum uptake value of 625 mg/g and adsorption efficiency of 96.9 % through thionyl (C[dbnd]S), amino, and phenyl groups. The pseudo-second-order rate equation and the Langmuir model were best fitted for the I2 adsorption over MIL-101-NH2-TFR adsorbent. Quantum chemical calculations were conducted to reveal the mechanism of I2 adsorption onto the surface of MIL-101-NH2-TFR. Moreover, MIL-101-NH2-TFR was used to anchor Cu2+ to generate a catalytic system (MIL-101-NH2-TFR/Cu2+) for detoxification of Cr(VI) in the presence of formic acid as an eco-friendly reducing reagent in an aqueous medium. MIL-101-NH2-TFR and MIL-101-NH2-TFR/Cu2+ were reused several times for the adsorption/desorption process and the catalytic reduction, respectively.",
keywords = "Cr(VI) reduction, DFT, Iodine adsorption, MIL-101-NH2, Metal-organic frameworks",
author = "Saeed Askari and Khodaei, {Mohammad Mehdi} and Enrico Benassi and Mohammad Jafarzadeh",
note = "This study was funded by Razi University with no grant number. Публикация для корректировки.",
year = "2023",
month = jun,
doi = "10.1016/j.mtcomm.2023.105990",
language = "English",
volume = "35",
journal = "Materials Today Communications",
issn = "2352-4928",
publisher = "Elsevier",

}

RIS

TY - JOUR

T1 - MIL-101-NH2-TFR and MIL-101-NH2-TFR/Cu2+ as novel hybrid materials for efficient adsorption of iodine and reduction of Cr(VI)

AU - Askari, Saeed

AU - Khodaei, Mohammad Mehdi

AU - Benassi, Enrico

AU - Jafarzadeh, Mohammad

N1 - This study was funded by Razi University with no grant number. Публикация для корректировки.

PY - 2023/6

Y1 - 2023/6

N2 - Today, due to the earnest jeopardies of environmental contaminants from various sources and their deteriorating effects on the ecosystem, the adsorption and reduction of these highly toxic pollutants with an efficient and cost-effective protocol can be considered a desirable phenomenon. Herein, a chromium-based metal-organic framework (MIL-101-NH2) was modified with thiourea and formaldehyde to form a polymeric layer on the surface (MIL-101-NH2-TFR). The resulting nanohybrid, as an adsorbent, was applied for efficient capture of iodine (I2) molecules from cyclohexane solution. MIL-101-NH2-TFR nanohybrid signified a superior adsorption performance for the capture of I2, compared to the pristine MIL-101-NH2, with a theoretical maximum uptake value of 625 mg/g and adsorption efficiency of 96.9 % through thionyl (C[dbnd]S), amino, and phenyl groups. The pseudo-second-order rate equation and the Langmuir model were best fitted for the I2 adsorption over MIL-101-NH2-TFR adsorbent. Quantum chemical calculations were conducted to reveal the mechanism of I2 adsorption onto the surface of MIL-101-NH2-TFR. Moreover, MIL-101-NH2-TFR was used to anchor Cu2+ to generate a catalytic system (MIL-101-NH2-TFR/Cu2+) for detoxification of Cr(VI) in the presence of formic acid as an eco-friendly reducing reagent in an aqueous medium. MIL-101-NH2-TFR and MIL-101-NH2-TFR/Cu2+ were reused several times for the adsorption/desorption process and the catalytic reduction, respectively.

AB - Today, due to the earnest jeopardies of environmental contaminants from various sources and their deteriorating effects on the ecosystem, the adsorption and reduction of these highly toxic pollutants with an efficient and cost-effective protocol can be considered a desirable phenomenon. Herein, a chromium-based metal-organic framework (MIL-101-NH2) was modified with thiourea and formaldehyde to form a polymeric layer on the surface (MIL-101-NH2-TFR). The resulting nanohybrid, as an adsorbent, was applied for efficient capture of iodine (I2) molecules from cyclohexane solution. MIL-101-NH2-TFR nanohybrid signified a superior adsorption performance for the capture of I2, compared to the pristine MIL-101-NH2, with a theoretical maximum uptake value of 625 mg/g and adsorption efficiency of 96.9 % through thionyl (C[dbnd]S), amino, and phenyl groups. The pseudo-second-order rate equation and the Langmuir model were best fitted for the I2 adsorption over MIL-101-NH2-TFR adsorbent. Quantum chemical calculations were conducted to reveal the mechanism of I2 adsorption onto the surface of MIL-101-NH2-TFR. Moreover, MIL-101-NH2-TFR was used to anchor Cu2+ to generate a catalytic system (MIL-101-NH2-TFR/Cu2+) for detoxification of Cr(VI) in the presence of formic acid as an eco-friendly reducing reagent in an aqueous medium. MIL-101-NH2-TFR and MIL-101-NH2-TFR/Cu2+ were reused several times for the adsorption/desorption process and the catalytic reduction, respectively.

KW - Cr(VI) reduction

KW - DFT

KW - Iodine adsorption

KW - MIL-101-NH2

KW - Metal-organic frameworks

UR - https://www.scopus.com/record/display.uri?eid=2-s2.0-85153087794&origin=inward&txGid=451187f96e7895531d1575462211daf3

UR - https://www.mendeley.com/catalogue/7442d95b-fbe0-3dd1-a312-fe5517981535/

U2 - 10.1016/j.mtcomm.2023.105990

DO - 10.1016/j.mtcomm.2023.105990

M3 - Article

VL - 35

JO - Materials Today Communications

JF - Materials Today Communications

SN - 2352-4928

M1 - 105990

ER -

ID: 59290097