Polyaniline-co-polyindole functionalized magnetic porous carbon derived from MIL-53(Fe) for separation/enrichment of nitrophenols pollutants before determination with high-performance liquid chromatography-ultraviolet detection.

copolymer environmental water samples extraction magnetic porous carbon nanocomposite nitro-phenol

Journal

Journal of separation science
ISSN: 1615-9314
Titre abrégé: J Sep Sci
Pays: Germany
ID NLM: 101088554

Informations de publication

Date de publication:
Aug 2023
Historique:
revised: 17 05 2023
received: 26 03 2023
accepted: 20 05 2023
medline: 30 5 2023
pubmed: 30 5 2023
entrez: 30 5 2023
Statut: ppublish

Résumé

Herein, a novel polyaniline-co-polyindole functionalized magnetic porous carbon derived from MIL-53(Fe) was prepared and employed as an excellent nano-adsorbent to preconcentrate trace amounts of nitro-phenols in water and wastewater samples. Briefly, magnetic MIL-53(Fe) was synthesized by the addition of magnetite nanoparticles, terephthalic acid, and FeCl

Identifiants

pubmed: 37248655
doi: 10.1002/jssc.202300193
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

e2300193

Informations de copyright

© 2023 Wiley-VCH GmbH.

Références

Tahmasebi E, Yamini Y, Seidi S, Rezazadeh M. Extraction of three nitrophenols using polypyrrole-coated magnetic nanoparticles based on anion exchange process. J Chromatogr A. 2013;1314:15-23.
Zhang Q, Liang T, Wang L, Cai Y, Okoli CP. Cross-linked starch-based polymer as an SPE material for the determination of nitrophenols at trace levels in environmental water. J Sep Sci. 2014;37:257-64.
Mehraban M, Manoochehri M. Determination of chlorophenols in water by liquid chromatography method after magnetic solid phase extraction based on SiO2/MIL-101@Fe3O4 nanoadsorbent. Sep Sci Plus. 2020;3:150-7.
Environmental application note, phenols in water, USA. http://www.myantec.com/downloads/notes/environment/21600301-PhenolsinWater.pdf
Asgharinezhad AA, Ebrahimzadeh H. A simple and fast method based on mixed hemimicelles coated magnetite nanoparticles for simultaneous extraction of acidic and basic pollutants. Anal Bioanal Chem. 2016;408:473-86.
Muhammad T, Yimit O, Turahun Y, Muhammad K, Uludağ Y, Zhao Z. On-line determination of 4-nitrophenol by combining molecularly imprinted solid-phase extraction and fiber-optic spectrophotometry. J Sep Sci. 2014;37:1873-9.
Asgharinezhad AA, Ebrahimzadeh H. A novel polymer coated magnetic porous carbon nanocomposite derived from a metal-organic framework for multi-target environmental pollutants preconcentration. J Chromatogr A. 2020;1634:461664.
Asgharinezhad AA, Ebrahimzadeh H. Magnetic porous carbon nanocomposite derived from cobalt based-metal-organic framework for extraction and determination of homo and hetero-polycyclic aromatic hydrocarbons. Talanta. 2021;233:122526.
Gumus ZP, Soylak M. Metal organic frameworks as nanomaterials for analysis of toxic metals in food and environmental applications. TrAC Trends Anal Chem. 2021;143:116417.
Qin P, Han L, Zhang X, Li M, Li D, Lu M, et al. MIL-101 (Fe)-derived magnetic porous carbon as sorbent for stir bar sportive-dispersive microextraction of sulfonamides. Microchim Acta. 2021;188:1-11.
Jalilian N, Ebrahimzadeh H, Asgharinezhad AA, Khodayari P. Magnetic molecularly imprinted polymer for the selective dispersive micro solid phase extraction of phenolphthalein in urine samples and herbal slimming capsules prior to HPLC-PDA analysis. Microchem J. 2021;160:105712.
Veisi B, Lorestani B, Sobhan Ardakani S, Cheraghi M, Tayebi L. Post synthetic modification of magnetite@MIL-53 (Fe)-NH2 core-shell nanocomposite for magnetic solid phase extraction of ultra-trace Pd(II) ions from real samples. Int J Environ Anal Chem. 2022;16:1-18.
Jalilian N, Ebrahimzadeh H, Asgharinezhad AA. Preparation of magnetite/multiwalled carbon nanotubes/metal-organic framework composite for dispersive magnetic micro solid phase extraction of parabens and phthalate esters from water samples and various types of cream for their determination with liquid chromatography. J Chromatogr A. 2019;1608:460426.
Han L, Qin P, Li M, Li D, Mu M, Gao Y, et al. Hierarchically porous zirconium-based metal-organic frameworks for rapid adsorption and enrichment of sulfonamide antibiotics. Chem Eng J. 2023;456:140969.
Qin P, Chen D, Li D, Li M, Mu M, Gao Y, et al. Synthesis of spindle-like amino-modified Zn/Fe bimetallic metal-organic frameworks as sorbents for dispersive solid-phase extraction and preconcentration of phytohormoes in vegetable samples. Food Chem. 2023;409:135272.
Han L, Liu X, Zhang X, Li M, Li D, Qin P, et al. Preparation of multivariate zirconia metal-organic frameworks for highly efficient adsorption of endocrine disrupting compounds. J Hazard Mater. 2022;424:127559.
Habila M, Alhenaki B, El-Marghany A, Sheikh M, Ghfar A, ALOthman Z, et al. Metal organic frameworks enhanced dispersive solid phase microextraction of malathion before detection by UHPLC-MS/MS. J Sep Sci. 2020;43:3103-9.
Ozalp O, Gumus ZP, Soylak M. MIL-101 (Cr) metal-organic frameworks based on deep eutectic solvent (ChCl: Urea) for solid phase extraction of imidacloprid in tea infusions and water samples. J Mol Liq. 2023;378:121589.
Salimi M, Behbahani M, Sobhi HR, Ghambarian M, Esrafili A. Dispersive solid-phase extraction of selected nitrophenols from environmental water samples using a zirconium-based amino-tagged metal-organic framework nanosorbent. J Sep Sci. 2018;41:4159-66.
Dargahi R, Ebrahimzadeh H, Asgharinezhad AA, Hashemzadeh A, Amini MM. Dispersive magnetic solid-phase extraction of phthalate esters from water samples and human plasma based on a nanosorbent composed of MIL-101 (Cr) metal-organic framework and magnetite nanoparticles before their determination by GC-MS. J Sep Sci. 2018;41:948-57.
Barzin M, Pooladi M. A novel post-synthetic modification of magnetic MIL-101 (Cr) metal-organic framework with 1, 8-diaminonaphthalene chelator and its utilization for separation/determination of cadmium and nickel in food samples. Chem Papers. 2022;27:1-10.
Rezabeyk S, Manoochehri M. Selective extraction and determination of beryllium in real samples using amino-5, 8-dihydroxy-1, 4-naphthoquinone functionalized magnetic MIL-53 as a novel nanoadsorbent. RSC Adv. 2020;10:36897-905.
Rouhi M, Lakouraj MM, Tashakkorian H, Hasantabar V. Novel carbon based bioactive nanocomposites of aniline/indole copolymer for removal of cationic dyes from aqueous solution: Kinetics and isotherms. New J Chem. 2019;43:2400-10.
Asgharinezhad AA, Ebrahimzadeh H. Poly (2-aminobenzothiazole)-coated graphene oxide/magnetite nanoparticles composite as an efficient sorbent for determination of non-steroidal anti-inflammatory drugs in urine sample. J Chromatogr A. 2016;1435:18-29.
Asgharinezhad AA, Ebrahimzadeh H, Mirbabaei F, Mollazadeh N, Shekari N. Dispersive micro-solid-phase extraction of benzodiazepines from biological fluids based on polyaniline/magnetic nanoparticles composite. Anal Chim Acta. 2014;844:80-9.
Ebrahimzadeh H, Asgharinezhad AA, Abedi H, Kamarei F. Optimization of carrier-mediated three-phase hollow fiber microextraction combined with HPLC-UV for determination of propylthiouracil in biological samples. Talanta 2011;85:1043-9.
Jalilian N, Ebrahimzadeh H, Asgharinezhad AA. Determination of acidic, basic and amphoteric drugs in biological fluids and wastewater after their simultaneous dispersive micro-solid phase extraction using multiwalled carbon nanotubes/magnetite nanoparticles@ poly (2-aminopyrimidine) composite. Microchem J. 2018;143:337-49.
Chung RJ, Leong MI, Huang SD. liquid chromatography and a new manual shaking-enhanced, ultrasound-assisted emulsification microextraction method based on solidification of a floating organic droplet. J Chromatogr A. 2012;1246:55-61.
Moradi M, Yamini Y, Seidi S, Ghambarian M, Esrafili A. Ultrasound-assisted emulsification microextraction using low density solvent for analysis of toxic nitrophenols in natural waters. Int J Environ Anal Chem. 2013;93:199-212.
Penalver A, Pocurull E, Borrull F, Marce RM. Solid-phase microextraction coupled to high-performance liquid chromatography to determine phenolic compounds in water samples. J Chromatogr A. 2002;953:79-87.
El-Sheikh AH, Alzawahreh AM, Sweileh JA. Preparation of an efficient sorbent by washing then pyrolysis of olive wood for simultaneous solid phase extraction of chloro-phenols and nitro-phenols from water. Talanta 2011;85:1034-42.
Asgharinezhad AA, Ebrahimzadeh H. Coextraction of acidic, basic and amphiprotic pollutants using multiwalled carbon nanotubes/magnetite nanoparticles@polypyrrole composite. J Chromatogr A. 2015;1412:1-11.
Sohaniyan M, Manoochehri M, Daghighi Asli M. Liquid chromatographic determination of trace levels of nitrophenols in water samples after dispersive magnetic solid phase extraction. J Sep Sci. 2019;42:3528-34.

Auteurs

Mahnaz Barzin (M)

Department of Medicinal Chemistry, Pharmaceutical Science Branch, Islamic Azad University, Tehran, Iran.

Mohsen Pooladi (M)

Department of Chemistry, Karaj Branch, Islamic Azad University, Karaj, Iran.

Classifications MeSH