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  • Automated direct-immersion solid-phase microextraction using crosslinked polymeric ionic liquid sorbent coatings for the determination of water pollutants by gas chromatography.

Automated direct-immersion solid-phase microextraction using crosslinked polymeric ionic liquid sorbent coatings for the determination of water pollutants by gas chromatography.

Analytical and bioanalytical chemistry (2015-05-01)
María Cordero-Vaca, María J Trujillo-Rodríguez, Cheng Zhang, Verónica Pino, Jared L Anderson, Ana M Afonso
RESUMEN

Four different crosslinked polymeric ionic liquid (PIL)-based sorbent coatings were evaluated in an automated direct-immersion solid-phase microextraction method (automated DI-SPME) in combination with gas chromatography (GC). The crosslinked PIL coatings were based on vinyl-alkylimidazolium- (ViCnIm-) or vinylbenzyl-alkylimidazolium- (ViBzCnIm-) IL monomers, and di-(vinylimidazolium)dodecane ((ViIm)2C12-) or di-(vinylbenzylimidazolium)dodecane ((ViBzIm)2C12-) dicationic IL crosslinkers. In addition, a PIL-based hybrid coating containing multi-walled carbon nanotubes (MWCNTs) was also studied. The studied PIL coatings were covalently attached to derivatized nitinol wires and mounted onto the Supelco assembly to ensure automation when acting as SPME coatings. Their behavior was evaluated in the determination of a group of water pollutants, after proper optimization. A comparison was carried out with three common commercial SPME fibers. It was observed that those PILs containing a benzyl group in their structures, either in the IL monomer and crosslinker (PIL-1-1) or only in the crosslinker (PIL-0-1), were the most efficient sorbents for the selected analytes. The validation of the overall automated DI-SPME-GC-flame ionization detector (FID) method gave limits of detection down to 135 μg · L(-1) for p-cresol when using the PIL-1-1 and down to 270 μg · L(-1) when using the PIL-0-1; despite their coating thickness: ~2 and ~5 μm, respectively. Average relative recoveries with waters were of 85 ± 14 % and 87 ± 15 % for PIL-1-1 and PIL-0-1, respectively. Precision values as relative standard deviation were always lower than 4.9 and 7.6 % (spiked level between 10 and 750 μg · L(-1), as intra-day precision). Graphical Abstract Automated DI-SPME-GC-FID using crosslinked-PILs sorbent coatings for the determination of waterpollutants.

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Peróxido de hidrógeno solution, 30 % (w/w) in H2O, contains stabilizer
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Acetonitrilo, anhydrous, 99.8%
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Hidróxido de sodio solution, BioUltra, for molecular biology, 10 M in H2O
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Imidazol, ReagentPlus®, 99%
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Hidróxido de sodio solution, 1.0 N, BioReagent, suitable for cell culture
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2-Propanol, for molecular biology, BioReagent, ≥99.5%
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2,2′-Azobis(2-methylpropionitrile), 98%
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Fenol solution, Equilibrated with 10 mM Tris HCl, pH 8.0, 1 mM EDTA, BioReagent, for molecular biology
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Imidazol, for molecular biology, ≥99% (titration)
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Alcohol isopropílico, ≥99.7%, FCC, FG
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Hidróxido de sodio solution, 0.1 M
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Imidazole buffer Solution, BioUltra, 1 M in H2O
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Imidazol, ACS reagent, ≥99% (titration)
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2-Propanol, anhydrous, 99.5%
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2-Propanol, BioUltra, for molecular biology, ≥99.5% (GC)
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4-Vinylbenzyl chloride, 90%
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Acetato de etilo, anhydrous, 99.8%
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2-Propanol, electronic grade, 99.999% trace metals basis
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Imidazol, BioUltra, ≥99.5% (GC)
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Fenol solution, BioReagent, Saturated with 0.01 M citrate buffer, pH 4.3 ± 0.2, for molecular biology
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Hidróxido de sodio solution, 1 M
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Vinyltrimethoxysilane, 98%
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Fenol, ≥99%
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Fluorene, 98%
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Filtro SPME Polidimetilsiloxano (PDMS), df 100 μm(PDMS, needle size 24 ga, for use with manual holder
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4-tert-Butylphenol, 99%
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1-Bromohexane, 98%
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