| Literature DB >> 35632191 |
Andrea Dandić1, Ivana Novak1, Marija Jozanović1, Iva Pukleš2, Aleksandar Széchenyi1, Mateja Budetić1, Mirela Samardžić1.
Abstract
Direct potentiometric measurements using solid-state sensors have a great potential for thiabendazole (TBZ) determination, considering simplicity, accuracy, and low cost. Modifying the sensing material of the sensor with multi-walled carbon nanotubes (MWCNTs) leads to improved analytical properties of the sensor. In this study, a new potentiometric solid-state sensor for TBZ determination, based on MWCNTs modified with a sulfate group, and TBZ ion as sensing material was developed. The sensor exhibited a Nernstian response for TBZ (60.4 mV/decade of activity) in a working range between 8.6 × 10-7 and 1.0 × 10-3 M. The detection limit for TBZ was 6.2 × 10-7 M. The response time of the sensor for TBZ was 8 s, and its signal drift was only 1.7 mV/h. The new sensor is applicable for direct potentiometric determination of TBZ in complex real samples, such as fruit peel. The accuracy of TBZ determination is confirmed using the standard addition method.Entities:
Keywords: direct potentiometry; solid-state sensor; thiabendazole
Mesh:
Substances:
Year: 2022 PMID: 35632191 PMCID: PMC9147095 DOI: 10.3390/s22103785
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.847
Figure 1SEM images of sensor surface: (a) graphene modified; (b) PVC membrane.
Figure 2Response to thiabendazole (TBZ), obtained using the MWCNT-OSO3−TBZ+ sensor.
Statistics of the response characteristics of the MWCNT-OSO3−TBZ+ sensor to TBZ 1.
| Parameters | |
|---|---|
| Slope (mV/decade of activity) | 60.4 ± 0.8 |
| Standard error | 1.6 |
| Correl. coeff. (R2) | 0.9991 |
| Detection limit (M) | 6.2 × 10−7 |
| Useful conc. range (M) | 8.6 × 10−7–1.0 × 10−3 |
1 Average of 5 determinations ± confidence limits (p = 0.95).
The comparison of the performance of the new MWCNT-OSO3−TBZ+ sensor with the performance of other potentiometric sensors for TBZ determination.
| Type of the Electrode | ISE with Liquid Membrane and Inner Electrolyte | ISE with Liquid Membrane and Inner Electrolyte | Solid-State ISE with Liquid Membrane |
|---|---|---|---|
| Ionophore | (TBZ)3(PMo12O40)2 1 | (TBZH2)3(PMo12O40)2 2 | MWCNT-OSO3−TBZ+ |
| Slope [mV/decade of activity] | 30 | 30 | 60.4 ± 0.8 |
| Detection limit [M] | 1.00 × 10−5 | - | 6.2 × 10−7 |
| Useful conc. range [M] | 1.0 × 10−5–1.0 × 10−2 | 1.0 × 10−5–1.0 × 10−2 | 8.6 × 10−7–1.0 × 10−3 |
| Dynamic response [s] | 40–50 ( | 40–50 ( | 8 ( |
| Working pH range | 4–5 | 3–4 | 2–4 |
| Lifetime [days] | 65 | 60–65 | 90 |
| Ref. | [ | [ | This work |
1 Ion pair of TBZ with 12-molybdophosphoric acid. 2 Ion pair of TBZH22+ with 12-molybdophosphoric acid.
Figure 3Dynamic response of the new MWCNT-OSO3−TBZ+ sensor.
Potentiometric selectivity coefficients of the new MWCNT-OSO3−TBZ+ sensor obtained using the fixed interference method.
| Interference |
|
|---|---|
| Ammonium | 5.60 × 10−4 |
| Sodium | 3.42 × 10−4 |
| Calcium | 7.20 × 10−5 |
| Magnesium | 1.60 × 10−5 |
| Ascorbic acid | 8.34 × 10−4 |
| Citric acid | 3.70 × 10−3 |
| Potassium | 5.42 × 10−4 |
| Copper | 3.59 × 10−3 |
| Zinc | 4.36 × 10−4 |
| Lithium | 2.05 × 10−4 |
| Iron (III) | 3.10 × 10−3 |
| Iron (II) | 2.34 × 10−3 |
| Glucose | 2.51 × 10−4 |
| Fructose | 2.21 × 10−4 |
| Carbaryl | 2.73 × 10−2 |
| Fuberidazole | 5.03 × 10−2 |
Figure 4The influence of pH value on the potentiometric response of the new MWCNT-OSO3−TBZ+ sensor.
Figure 5Gran plots obtained measuring TBZ concentration in aqueous sample of known concentration (c = 1.0 × 10−5 M, three repeated measurements).
Results of the TBZ determination in aqueous samples obtained using direct potentiometry and the Gran method 1.
| TBZ Added (M) | TBZ Found (M) ± SD | Recovery (%) | ||
|---|---|---|---|---|
| Direct Potentiometry | Gran Method | Direct Potentiometry | Gran Method | |
| 5.00 × 10−4 | 4.74 × 10−4 ± 4.75 × 10−6 | 4.96 × 10−4 ± 5.30 × 10−6 | 94.8 | 99.2 |
| 1.00 × 10−4 | 1.08 × 10−4 ± 7.23 × 10−6 | 1.03 × 10−4 ± 1.45 × 10−6 | 108.0 | 103.0 |
| 5.00 × 10−5 | 5.18 × 10−5 ± 5.28 × 10−7 | 5.20 × 10−5 ± 8.06 × 10−7 | 103.6 | 104.0 |
| 1.00 × 10−5 | 1.05 × 10−5 ± 6.39 × 10−7 | 1.13 × 10−5 ± 4.88 × 10−7 | 105.0 | 113.0 |
| 5.00 × 10−6 | 4.09 × 10−6 ± 1.85 × 10−7 | 5.60 × 10−6 ± 2.36 × 10−7 | 81.8 | 112.0 |
1 Average of three determinations.
Results of the TBZ determination in real samples obtained using Gran method 1.
| Sample | TBZ Found | TBZ Found | Standard Addition Method | ||
|---|---|---|---|---|---|
| TBZ Added | TBZ Found | Recovery | |||
| Orange | 2.34 × 10−4 ± 1.65 × 10−5 | 0.078 | 1.00 × 10−5 | 9.51 × 10−6 ± 3.90 × 10−7 | 95.1 |
| Lemon | 3.29 × 10−4 ± 3.28 × 10−5 | 0.129 | 1.00 × 10−5 | 1.07 × 10−5 ± 5.73 × 10−7 | 107.0 |
| Banana | 2.39 × 10−4 ± 2.88 × 10−5 | 0.089 | 1.00 × 10−5 | 1.10 × 10−5 ± 2.54 × 10−7 | 110.0 |
| Clementine | 1.70 × 10−4 ± 8.98 × 10−6 | 0.055 | 1.00 × 10−5 | 1.03 × 10−5 ± 3.77 × 10−7 | 103.0 |
| Lime | 1.53 × 10−4 ± 7.52 × 10−6 | 0.062 | 1.00 × 10−5 | 1.05 × 10−5 ± 8.53 × 10−7 | 105.0 |
1 Average of three determinations.
Figure 6Responses of the new MWCNT-OSO3TBZ+ sensor to TBZ in water (● new sensor, ● after approximately three months with daily measurements).