| Literature DB >> 35480276 |
Setareh Rostami-Javanroudi1, Masoud Moradi1, Kiomars Sharafi1, Nazir Fattahi1.
Abstract
In the present research, several novel and natural hydrophobic deep eutectic solvents (DESs) were prepared using methyltrioctylammonium chloride (MTOAC) as the hydrogen bond acceptor (HBA) and different types of straight chain alcohols as hydrogen bond donors (HBDs). One of the DESs composed of MTOAC and n-butanol was advantageously used to develop a vortex-assisted liquid phase microextraction (VALPME) method combined with high-performance liquid chromatography-ultraviolet detection (HPLC-UV) for the determination of common acaricides in fruit juice samples. Several important parameters influencing extraction efficiency were investigated and optimized, including the type and volume of DES, sample solution pH, effect of salt addition and, extraction and vortex time. Under optimal experimental conditions, the method showed good linearity with the correlation coefficients (R 2) of 0.9986-0.9991 in the linear range of 2-300 μg L-1, low limits of detection of 0.5-1 μg L-1 and acceptable extraction recoveries in the range of 85-93%. The proposed method was successfully applied for the extraction and preconcentration of trace acaricides in real fruit juice samples, and the results demonstrated the potential of the synthesized DESs for the extraction and determination of contaminants in aqueous samples. This journal is © The Royal Society of Chemistry.Entities:
Year: 2021 PMID: 35480276 PMCID: PMC9040733 DOI: 10.1039/d1ra04781g
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Fig. 1Effect of the different types of extraction solvent (A), molar ratio of MTOAC to n-butanol (B), DES volume (C), sample solution pH (D), concentration of NaCl (E) and extraction and vortex time (F) on the extraction recovery of the acaricides in fruit juice. Extraction conditions: types of extractant, MTOAC : n-butanol; proportion of MTOAC : n-butanol, 1 : 3; volume of the sample solution, 10 mL; sample solution pH, 7; volume of the extraction solvent, 100 μL; extraction and vortex time, 10 min; room temperature.
Fig. 2Calibration curves of target acaricides obtained under optimized conditions.
Quantitative result of DES-VALPME and HPLC-UV of common acaricides from fruit juice
| Analyte | ER% | EF | RSD% (intra-day, | RSD% (inter-day, | LR (μg L−1) |
| LOD (μg L−1) | LOQ (μg L−1) |
|---|---|---|---|---|---|---|---|---|
| Clofentezine | 85 | 106 | 3.8 | 5.1 | 3–200 | 0.9986 | 1 | 3 |
| Fenpyroximate | 93 | 116 | 2.5 | 3.6 | 2–300 | 0.9991 | 0.5 | 2 |
| Pyridaben | 90 | 112 | 3.2 | 4.7 | 2–300 | 0.9988 | 0.5 | 2 |
Relative recoveries and standard deviations of target acaricides from spiked fruit juice samples
| Sample | Analyte | Added (μg L−1) | Found (mean ± SD) (μg L−1) | Relative recovery (%) |
|---|---|---|---|---|
| Apple juice | Clofentezine | 20 | 19.6 ± 1.2 | 98 |
| 50 | 48.8 ± 3.5 | 97 | ||
| Fenpyroximate | 20 | 20.3 ± 0.8 | 101 | |
| 50 | 49.6 ± 2.7 | 99 | ||
| Pyridaben | 20 | 19.2 ± 0.6 | 96 | |
| 50 | 51.4 ± 4.1 | 103 | ||
| Orange juice | Clofentezine | 20 | 21.2 ± 1.3 | 106 |
| 50 | 47.8 ± 3.9 | 96 | ||
| Fenpyroximate | 20 | 18.9 ± 1.8 | 94 | |
| 50 | 48.6 ± 0.5 | 97 | ||
| Pyridaben | 20 | 20.7 ± 1.3 | 103 | |
| 50 | 48.0 ± 4.5 | 96 | ||
| Sour cherry juice | Clofentezine | 20 | 21.0 ± 1.3 | 105 |
| 50 | 53.1 ± 4.0 | 106 | ||
| Fenpyroximate | 20 | 20.8 ± 1.8 | 104 | |
| 50 | 47.5 ± 2.5 | 95 | ||
| Pyridaben | 20 | 21.2 ± 1.7 | 106 | |
| 50 | 49.0 ± 3.5 | 98 | ||
| Grape juice | Clofentezine | 20 | 20.8 ± 1.5 | 104 |
| 50 | 50.8 ± 4.2 | 102 | ||
| Fenpyroximate | 20 | 18.7 ± 1.1 | 93 | |
| 50 | 47.5 ± 3.3 | 95 | ||
| Pyridaben | 20 | 21.4 ± 2.2 | 107 | |
| 50 | 48.2 ± 2.7 | 96 | ||
| Peach juice | Clofentezine | 20 | 20.5 ± 1.5 | 102 |
| 50 | 53.4 ± 4.2 | 107 | ||
| Fenpyroximate | 20 | 19.2 ± 0.7 | 96 | |
| 50 | 46.6 ± 4.0 | 93 | ||
| Pyridaben | 20 | 18.5 ± 1.7 | 92 | |
| 50 | 52.8 ± 4.3 | 106 | ||
| Apricot juice | Clofentezine | 20 | 21.3 ± 1.2 | 107 |
| 50 | 49.0 ± 2.9 | 98 | ||
| Fenpyroximate | 20 | 18.8 ± 1.3 | 94 | |
| 50 | 47.6 ± 3.3 | 95 | ||
| Pyridaben | 20 | 21.3 ± 1.8 | 106 | |
| 50 | 51.6 ± 4.7 | 103 |
Fig. 3Chromatograms of direct injection of acaricides standards at concentration level of 1.00 mg L−1 (A), grape juice sample (B) and the corresponding spiked ones at concentration of 20.0 μg L−1 for target acaricides (C) obtained by using DES-VALPME combined HPLC-UV.
Comparison of DES-VALPME with other extraction methods for determination of acaricides in different samples
| Methods | LOD | LR | RSD% | Extraction solvent volume | Extraction time (min) | Analytes | Samples | Reference |
|---|---|---|---|---|---|---|---|---|
| TEME-HPLC-VWD | 21.1–61.4 | 0.1–600 | 1.9–3.4 | 53 μL | 16 | Chlorfenapyr, fenpyroximate & spirodiclofen | Fruit juice |
|
| MMHDSPE-HPLC-DAD | 0.16–0.57 | 2.5–5 | 2 | 50 mL | 30 | Clofentezine, fenpyroximate & pyridaben | Fruit juice |
|
| SPME-GC-MS | 2–18 | — | 7–11 | Solvent free | 30 | Amitraz, bromopropylate, coumaphos and fluvalinate | Honey |
|
| EA-DLLME-HPLC-DAD | 0.07–0.26 | 1–500 | 1.22–5.14 | 100 μL | 5 | Clofentezine, fenpyroximate, diafenthiuron and pyridaben | Honey |
|
| SPE-HPLC-UV | 1–200 | 5–800 | 1.2–7.9 | 1 mL | 30 | Flumethrin, chlorfenvinphos, coumaphos, amitraz and cymiazole | Honey |
|
| LLE-HPLC-DAD | 1.5–60 μg kg−1 | — | 1.7–8.8 | 90 mL | >60 | Amitraz, coumaphos, fluvalinate, thymol and rotenone | Honey |
|
| DLLME-CE | 20–57 | 500–50 000 | 1.23–5.60 | 400 + 800 μL | <50 | Sulfapyridine, sulfadimidin, sulfadoxin, sulfadiazine and sulfamerazin | Water |
|
| DES-VALPME-HPLC-UV | 0.5–1 | 2–300 | 2.5–3.8 | 100 μL | 10 | Clofentezine, fenpyroximate & pyridaben | Fruit juice | This work |
LOD, limit of detection.
LR, linear range.
RSD, relative standard deviation.
Totally organic solvent-free emulsification microextraction-high performance liquid chromatography-variable wavelength detector.
Magnetic mixed hemimicelles dispersive solid-phase extraction-high performance liquid chromatography-diode array detector.
Solid-phase microextraction-gas chromatography-mass spectrometry.
Effervescence-assisted, dispersive liquid–liquid mircoextraction-high performance liquid chromatography-diode array detector.
Solid phase extraction-high performance liquid chromatography-ultraviolet detector.
Liquid–liquid-extraction-high performance liquid chromatography-diode array detector.
Dispersive liquid–liquid mircoextraction coupled with capillary electrophoresis.