| Literature DB >> 35799938 |
Hesham H El-Feky1, Alaa S Amin1, Eslam M I Moustafa1.
Abstract
A novel sensitive, selective, and reversible cobalt(ii) ion optical sensor was prepared by the incorporation of 5-[o-carboxyphenylazo]2,4-dihydroxybenzoic acid [CPDB] and sodium tetraphenylborate (NaTPB) in a plasticized polyvinyl chloride (PVC) membrane containing dioctyl adipate (DOA) as a plasticizer. The influence of several parameters such as pH, base matrix, solvent mediator and reagent concentration was optimized. A comparison of the obtained results with those of previously reported sensors revealed that the proposed method, in addition to being fast and simple, provided a good linear range (0.05-45.20 μM) and low detection limit (0.015 μM). Low detection and quantification limits and excellent selectivity in the presence of interfering ions such as Fe3+, Cu2+, Ni2+, Ag+, Au3+, Cr3+, Cd2+, Zn2+, Hg2+, and SO4 2- make it feasible to monitor Co2+ ion content accurately and repeatedly in environmental samples with complicated matrices. The optode was regenerated successfully using 0.3 M nitric acid (HNO3) solution while its response was reversible with a relative standard deviation (RSD) lower than 1.9% for seven replicate determinations of 20 μM Co2+ in various membranes. The optode was stable and was stored for at least 15 days without observing any change in its sensitivity. This journal is © The Royal Society of Chemistry.Entities:
Year: 2022 PMID: 35799938 PMCID: PMC9215704 DOI: 10.1039/d2ra03129a
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Fig. 1Absorption spectra of a control sensor (PVC; DOA; NaTPB; CPDB) and cobalt based sensor upon contact with 20 mmol L−1 Co2+ at pH 7.5.
Fig. 2Effect of Plasticizer types on the sensor formed to complexed with 20 mmol L−1 Co2+ at pH 7.5.
Effects of membrane composition on the absorbance of the proposed optode
| Sensor | LPVC (mg) | DOA (mg) | CPDB (mg) | NaTPB (mg) | Response time (min) | Absorbance |
|---|---|---|---|---|---|---|
| 1 | 30 | 45 | 8 | 5 | 5.0 | 0.177 ± 0.021 |
| 2 | 30 | 60 | 8 | 5 | 5.0 | 0.268 ± 0.012 |
| 3 | 30 | 75 | 8 | 5 | 5.0 | 0.375 ± 0.005 |
| 4 | 30 | 90 | 8 | 5 | 5.0 | 0.323 ± 0.009 |
| 5 | 30 | 75 | 4 | 5 | 5.0 | 0.201 ± 0.017 |
| 6 | 30 | 75 | 6 | 5 | 5.0 | 0.327 ± 0.011 |
| 7 | 30 | 75 | 8 | 5 | 5.0 | 0.375 ± 0.005 |
| 8 | 30 | 75 | 10 | 5 | 5.0 | 0.337 ± 0.008 |
| 9 | 30 | 75 | 8 | 2 | 5.0 | 0.219 ± 0.024 |
| 10 | 30 | 75 | 8 | 4 | 5.0 | 0.326 ± 0.011 |
| 11 | 30 | 75 | 8 | 5 | 5.0 | 0.375 ± 0.006 |
| 12 | 30 | 75 | 8 | 7 | 5.0 | 0.292 ± 0.032 |
| 13 | 30 | 75 | 8 | 5 | 2.0 | 0.132 ± 0.023 |
| 14 | 30 | 75 | 8 | 5 | 4.0 | 0.279 ± 0.011 |
| 15 | 30 | 75 | 8 | 5 | 5.0 | 0.375 ± 0.004 |
| 16 | 30 | 75 | 8 | 5 | 10 | 0.366 ± 0.006 |
Mean absorbance ± SD (n = 3) of each parameter is recorded from three solutions of 20 μM Co2+ at pH 7.5.
Fig. 3Effect of pH value on the sensor response for 20 mmol L−1 of Co2+ at the optimum conditions.
Interference by various ions on the proposed method for the determination of 150 ng mL−1 Co2+
| Foreign ion | Tolerance limit (μM) | Foreign ion | Tolerance limit (μM) |
|---|---|---|---|
| K+, CH3COO− | 20 000 | Cr3+, CO32− | 3500 |
| Na+, PO43− | 17 500 | W6+, Cl− | 3000 |
| Ba2+, NO3−, N3− | 15 000 | Cr6+, SO42− | 2500 |
| Al3+, BrO3− | 13 000 | Fe3+, I−, Br−, F− | 2000 |
| Ca2+, Mg2+, SO42− | 11 000 | Ti3+, HCO3− | 1500 |
| Ag+, Au3+, citrate | 10 000 | Mo6+, IO4− | 1250 |
| Fe2+, Zn2+, NO2− | 8500 | La3+, Y3+, Sc3+ | 1000 |
| Ni2+, Cu2+, NH4+ | 7000 | V5+, Be2+ | 800 |
| Zn2+, Hg2+, oxalate | 5500 | Th4+, UO22+ | 600 |
| Cd2+, Be2+, S2O32− | 4500 | Pb2+, Mn2 | 500 |
Analytical features of the proposed optical sensor
| Parameters | Proposed sensor |
|---|---|
| pH | 7.5 |
|
| 595 |
| Beer's range (μM) | 0.05–42.5 |
| Ringbom range (μM) | 0.2–40.5 |
| Molar absorptivity (L mol−1 cm−1) | 8.82 × 107 |
| Sandell sensitivity (ng cm−2) | 0.007 |
| Detection limit (μM) | 0.015 |
| Quantification limit (μM) | 0.048 |
| Regression equation | |
| Slope (μg mL−1) | 24.7 |
| Intercept | 0.09 |
| Correlation coefficient ( | 0.999 |
| RSD | 1.9 |
Relative standard deviation.
Comparison of some of the best previously reported Co2+ optodes based on various ionophores with the proposed one
| Sensing material | Type of sensor (membrane) | Dynamic range (M) | Response time (min) | Detection limit (M) | Ref. |
|---|---|---|---|---|---|
| Methyltrioctylammonium chloride | Triacetyl cellulose | 8.5 × 10−6 to 1.3 × 10−4 | 7.0 | 5.9 × 10−6 |
|
|
| Triacetyl cellulose | — | 0.5–3.0 | 5.8 × 10−6 |
|
| Pyrogallol red | Triacetyl cellulose | 1.7 × 10−6 to 1.52 × 10−4 | 2.0 | 3.6 × 10−7 |
|
| 1-(2-Pyridylazo)-2-naphthol | Cellulose acetate + poly(vinyl acetate) | 0.02–0.5 mg L−1 | 10 | 0.07 mg L−1 |
|
| Potassium thiocyanate | Polyvinyl chloride | 1.0 × 10−6 to 1.0 × 10−3 | 10 | 6.10 × 10−7 |
|
| 5-[ | Polyvinyl chloride | 5.0 × 10−8 to 4.52 × 10−5 | 5.0 | 1.5 × 10−8 | This work |
Comparative evaluation of various photometric reagents for the determination of cobalt
| Reagent | Medium/solvent |
|
| Linear range (μg mL−1) | Ref. |
|---|---|---|---|---|---|
| Disodium 1-nitroso-2-naphthol-3,6-disulphonate | DMF/CHCl3 | — | 1.33 | 0.84–1.44 |
|
| Sodium diethyldithiocarbamate | Aqueous (CTAB | 324 | 2.17 | 0.0377 ± 0.0082 |
|
|
| Toluene | 405 | 0.70 | 0.10–12 |
|
| 1-Hydroxy-2-carboxyanthraquinone | Ethanol–water | 494.5 | — | 0.75–4.5 |
|
| Diethyl thiocarbamate | Aqueous (ADS | 322 | 2.22 | 0.0493 ± 0.0018 |
|
| 3-Hydroxy-2-methyl-1,4-napthoquinone 4-oxime | Naphthalene/DMF | 430 | 2.09 | 0.12–1.8 |
|
| Bis(2,4,4-trimethylpentyl)phosphinic acid | Benzene | 635 | 0.03 | 0.295–2.36 |
|
| 1-Nitroso-2-naphthol | Aqueous (TX-100 | 420 | 3.18 | 0.0056–3.00 (1.68 × 10−3) |
|
| 2-(2-Benzothiazolyazo)-2- | Aqueous (TX-100 | 615 | 1.62 | 0.08–1.06 (10) |
|
| 2-Nitroso-1-naphthol-4-sulphonic acid | DMF | 620 | — | 0.2–12 |
|
| Phenanthraquinone monothiosemicarbazone | Water–methanol | 550 | 1.24 | 0.8–4.0 |
|
| 3-(4-Phenyl-2-pyridinyl)-5-phenyl-1,2,4-triazine + picric acid | 1,2-Dichloroethane | — | — | 0.0072–0.50 |
|
| 5-[ | PVC NaTPB | 595 | This work |
CTAB: hexadecyltrimethylammonium bromide.
Units μg.
ADS: ammoniumdodecyl sulphate.
Units mg.
Triton X-100.
Detection limit.
Determination of vitamin B12 in various dosage forms and biological samples compared with the BP method[63]
| Sample | Vitamin B12 content (mg) | Found |
|
| |
|---|---|---|---|---|---|
| Optode ± SD | Official ± SD | ||||
|
| |||||
| Tri-B | 0.125 | 0.126 ± 0.07 | 0.122 ± 0.22 | 1.37 | 2.09 |
| Mineravit | 1.000 | 0.997 ± 0.05 | 0.990 ± 0.18 | 1.56 | 2.35 |
| Trivarol | 0.125 | 0.124 ± 0.10 | 0.129 ± 0.26 | 1.14 | 1.88 |
| Beco forte | 12.00 | 11.98 ± 0.08 | 12.10 ± 0.17 | 1.22 | 2.03 |
|
| |||||
| B12 Depot | 0.5 mg mL−1 | 0.502 ± 0.12 | 0.494 ± 0.26 | 1.10 | 1.71 |
| Trivarol | 1 mg per amp | 1.008 ± 0.06 | 1.025 ± 0.20 | ||
| Tri-vitacid | 1 mg per amp | 0.994 ± 0.11 | 1.028 ± 0.28 | ||
| Tri-B | 1 mg per amp | 0.991 ± 0.14 | 1.031 ± 0.19 | 0.99 | 1.65 |
| Serum ng mL−1 | — | 75.0 ± 0.08 | 73.50 ± 0.23 | ||
| 25 | 103.6 ± 0.05 | 106.60 ± 0.14 | 1.43 | ||
| 50 | 127.2 ± 0.07 | 102.20 ± 0.13 | 2.26 | ||
| Urine ng mL−1 | 22.0 ± 0.10 | 23.00 ± 0.17 | |||
| 40 | 63.8 ± 0.07 | 61.20 ± 0.12 | 1.21 | ||
| 80 | 100.5 ± 0.09 | 106.40 ± 0.17 | 2.00 | ||
| Saliva ng mL−1 | 0 | n.d. | |||
| 35 | 37.1 ± 0.10 | 36.70 ± 0.21 | 1.65 | ||
| 70 | 72.5 ± 0.12 | 68.40 ± 0.27 | 3.17 | ||
Average of six determinations.
Theoretical values of t- and F- are 2.57 and 5.05, respectively, for five degrees of freedom and a 95% confidence limit.
The Nile Company for Pharmaceutical and Chemical Industries, Egypt.
Egyptian International Pharmaceutical Industries Company, Egypt.
The Memphis Chemical Company, Cairo, Egypt.
Misr Company for Pharmaceutical Industries, Cairo, Egypt.
The Arab Drug Company for Pharm. & Chem. Industries, Egypt.
Chemical Industries Development Company, Egypt.
Not detected.
Determination of Co in water and biological samples (95% confidence interval; n = 6)
| Sample | Added (μg L−1) | Found (μg L−1) | Recovery | |
|---|---|---|---|---|
| Sensor ± SD | FAAS ± SD | |||
| River water | — | 0.37 ± 0.03 | 0.40 ± 0.14 | — |
| 1.00 | 1.40 ± 0.08 | 1.35 ± 0.21 | 102.19 | |
| 2 0 | 2.32 ± 0.02 | 2.55 ± 0.17 | 97.89 | |
| Tap water | — | 0.25 ± 0.02 | 0.30 ± 0.14 | — |
| 2.5 | 2.80 ± 0.07 | 2.70 ± 0.09 | 101.82 | |
| 5.0 | 5.15 ± 0.03 | 5.45 ± 0.18 | 98.10 | |
| Wastewater | — | 1.05 ± 0.09 | 1.00 ± 0.25 | — |
| 4.0 | 4.95 ± 0.11 | 5.15 ± 0.32 | 98.02 | |
| 8.0 | 9.15 ± 0.04 | 8.80 ± 0.27 | 101.10 | |
| SRM-12 | — | 0.019 ± 0.02 | 0.020 ± 0.24 | — |
| 0.2 | 2.02 ± 0.09 | 2.03 ± 0.16 | 99.06 | |
| 0.4 | 0.415 ± 0.13 | 4.41 ± 0.23 | 103.26 | |
| SRM-589 | — | 0.112 ± 0.03 | 0.110 ± 0.17 | — |
| 0.1 | 0.215 ± 0.09 | 0.220 ± 0.22 | 101.42 | |
| 0.2 | 0.310 ± 0.14 | 0.320 ± 0.28 | 99.36 | |
Nile River water (Benha City).
Certified reference standard materials with cobalt contents of 0.020% for SRM-12 and 0.110% for SRM-589.
Determination of cobalt in food samples
| Samples | Added (μg g−1) | Found (μg g−1) | Recovery (%) | |
|---|---|---|---|---|
| Optode | FAAS | |||
| Tomato | — | 1.45 ± 0.03 | 1.51 ± 0.20 | — |
| 5.00 | 6.30 ± 0.05 | 6.30 ± 0.13 | 97.67 | |
| 10.0 | 11.60 ± 0.09 | 11.80 ± 0.21 | 101.31 | |
| Soybean meal | — | 312.10 ± 0.12 | 314.20 ± 0.27 | — |
| 25.0 | 335.80 ± 0.08 | 340.90 ± 0.32 | 99.61 | |
| 50.0 | 385.6 0.15 | 383.30 ± 0.24 | 99.94 | |
| Tea | — | 101.60 ± 0.11 | 105.40 ± 0.19 | — |
| 40.0 | 142.50 ± 0.07 | 147.70 ± 0.36 | 100.64 | |
| 80.0 | 180.30 ± 0.10 | 182.90 ± 0.29 | 99.28 | |
| Spinach | — | 0.83 ± 0.03 | 0.91 ± 0.24 | — |
| 4.00 | 4.65 ± 0.06 | 4.72 ± 0.34 | 96.27 | |
| 8.00 | 8.95 ± 0.08 | 9.20 ± 0.19 | 101.36 | |
| Mint | — | 13.50 ± 0.11 | 14.20 ± 0.32 | — |
| 10.0 | 22.90 ± 0.09 | 25.00 ± 0.27 | 97.45 | |
| 20.0 | 34.50 ± 0.12 | 33.60 ± 0.38 | 102.99 | |
| Cabbage | — | N.D. | N.D. | — |
| 15.0 | 14.91 ± 0.04 | 15.25 ± 0.33 | 99.40 | |
| 30.0 | 30.45 ± 0.12 | 29.60 ± 0.35 | 101.50 | |
| Flour | — | N.D. | N.D. | — |
| 12.5 | 12.55 ± 0.03 | 12.40 ± 0.23 | 100.40 | |
| 25.0 | 24.70 ± 0.07 | 25.25 ± 0.34 | 98.80 | |
Mean ± standard deviation (n = 6).
Not detected.