Bar Adsorptive Microextraction Coated with Carbon-Based Phase Mixtures for Performance-Enhancement to Monitor Selected Benzotriazoles, Benzothiazoles, and Benzenesulfonamides in Environmental Water Matrices
Abstract
:1. Introduction
2. Results and Discussion
2.1. Instrumental Operating Conditions
2.2. Optimization of the BAµE-µLD Efficiency
2.2.1. Selection of the Carbon-Based Phase
2.2.2. Back-Extraction Stage Conditions
2.2.3. Microextraction Stage Conditions
2.3. Validation Assessment
2.4. Comparison with Other Microextraction-Based Methodologies
2.5. Application to Environmental Water Matrices
3. Experimental
3.1. Standards and Materials
3.2. BAµE-µLD Assays
3.3. Assays on Real Water Matrices
3.4. Instrumental Set-Up
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Sample Availability: Samples of the compounds are not available from the authors. |
Compound | LODs(μg L−1) | LOQs(μg L−1) | Recovery (%) ± RSD (%) | |
---|---|---|---|---|
Intraday Assays (n = 5) | Interday Assays (n = 9) | |||
BSA | 1.0 | 3.3 | 59 ± 3 | 58 ± 6 |
OHBT | 1.4 | 4.0 | 38 ± 9 | 38 ± 9 |
BT | 1.0 | 3.3 | 56 ± 3 | 56 ± 9 |
MeBT | 1.2 | 4.0 | 59 ± 2 | 59 ± 2 |
BTh | 1.2 | 4.0 | 57 ± 6 | 56 ± 9 |
OHBTh | 1.0 | 3.3 | 53 ± 4 | 53 ± 3 |
Microextraction Technique | SPME | DLLME | SBSE | DLLME | AALLME | DLLME | SPME | BAμE |
---|---|---|---|---|---|---|---|---|
Instrumental System | GC-MS/MS | LC-MS/MS | GC-MS | HPLC-FLD-UV | HPLC-UV | GC-MS | LC-qTOF/MS | HPLC-DAD |
Sample Type | Tap, river, and effluent waste water | Ground, river, influent, and effluent waste water | Influent waste water | Tap, river, industrial waters, as well as effluent and influent wastewaters | Tap, lake, river, as well as effluent and influent wastewaters | Tap and effluent wastewaters | Tap, as well as influent and effluent wastewaters | Tap, estuarine, rain, and effluent wastewaters |
Sorbent or Solvent Phase Used for Microextraction | Polyacrylate | Chloroform/Carbon tetrachloride/ACN | Polyacrylate | Tri-n-butylphosphate/methanol | 1-Hexanol | Toluene/ACN | Polyethersulfone | Mixed ACs |
LODs (μg L−1) | 0.0001–7.5 | 0.04–0.75 | 0.256 | 0.04–2.2 | 0.8–1.4 | 0.007–0.080 a | 0.005–0.1 a | 1.0–1.4 |
Linear Range(μg L−1) | 1.0–100.0 | 0.01–50.0 | 0–10.0 | 2.4–536.1 | 5.0–10000.0 | 0.05–20.0 | 0.1–50.0 | 5.0–120.0 |
Precision (%) | ≤ 24.6 | ≤ 44.0 | ≤ 9.8 | ≤ 8.4 | ≤ 7.8 | ≤ 8.0 | ≤ 8.0 | ≤ 9.3 |
Absolute Recovery (%) | n.a. | 5.0–42.0 | n.a. | 67.4–97.1 | n.a. | 24.0–46.0 | n.a. | 37.9–59.2 |
Reference | [11] | [8] | [10] | [29] | [9] | [28] | [27] | This work |
Compounds | Slope | Intercept | r2 | Slope | Intercept | r2 | |
---|---|---|---|---|---|---|---|
Tap water | Estuarine water | ||||||
BSA | 0.3000 | 0.0788 | 0.9938 | 0.2600 | 0.0676 | 0.9913 | |
OHBT | 0.3000 | 0.0672 | 0.9920 | 0.2600 | 0.0608 | 0.9907 | |
BT | 1.5600 | 1.1600 | 0.9989 | 5.1200 | 1.3560 | 0.9927 | |
MeBT | 1.8400 | 1.6944 | 0.9987 | 0.4200 | 3.1112 | 0.9992 | |
BTh | 0.5000 | 2.0740 | 0.9937 | 0.2000 | 2.1520 | 0.9962 | |
OHBTh | 1.9800 | 5.5472 | 0.9957 | 0.8800 | 5.1488 | 0.9993 | |
Rainwater | Waste water | ||||||
BSA | 0.2800 | 0.0692 | 0.9926 | 0.2400 | 0.0680 | 0.9934 | |
OHBT | 0.4400 | 0.0992 | 0.9907 | 0.0800 | 0.0314 | 0.9923 | |
BT | 2.2000 | 1.4620 | 0.9973 | 4.2000 | 1.1480 | 0.9932 | |
MeBT | 0.6400 | 3.0044 | 0.9988 | 31.0000 | 2.6044 | 0.9991 | |
BTh | 0.2000 | 2.0480 | 0.9970 | 0.8000 | 2.0320 | 0.9995 | |
OHBTh | 0.5000 | 4.6128 | 0.9989 | 47.1200 | 4.3584 | 0.9984 |
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Ahmad, S.M.; Calado, B.B.C.; Oliveira, M.N.; Neng, N.R.; Nogueira, J.M.F. Bar Adsorptive Microextraction Coated with Carbon-Based Phase Mixtures for Performance-Enhancement to Monitor Selected Benzotriazoles, Benzothiazoles, and Benzenesulfonamides in Environmental Water Matrices. Molecules 2020, 25, 2133. https://doi.org/10.3390/molecules25092133
Ahmad SM, Calado BBC, Oliveira MN, Neng NR, Nogueira JMF. Bar Adsorptive Microextraction Coated with Carbon-Based Phase Mixtures for Performance-Enhancement to Monitor Selected Benzotriazoles, Benzothiazoles, and Benzenesulfonamides in Environmental Water Matrices. Molecules. 2020; 25(9):2133. https://doi.org/10.3390/molecules25092133
Chicago/Turabian StyleAhmad, Samir M., Bruno B.C. Calado, Mariana N. Oliveira, Nuno R. Neng, and J.M.F. Nogueira. 2020. "Bar Adsorptive Microextraction Coated with Carbon-Based Phase Mixtures for Performance-Enhancement to Monitor Selected Benzotriazoles, Benzothiazoles, and Benzenesulfonamides in Environmental Water Matrices" Molecules 25, no. 9: 2133. https://doi.org/10.3390/molecules25092133
APA StyleAhmad, S. M., Calado, B. B. C., Oliveira, M. N., Neng, N. R., & Nogueira, J. M. F. (2020). Bar Adsorptive Microextraction Coated with Carbon-Based Phase Mixtures for Performance-Enhancement to Monitor Selected Benzotriazoles, Benzothiazoles, and Benzenesulfonamides in Environmental Water Matrices. Molecules, 25(9), 2133. https://doi.org/10.3390/molecules25092133