| Literature DB >> 35566264 |
Yassine Benmassaoud1,2,3, Khaled Murtada1,2, Rachid Salghi3, Mohammed Zougagh1,2, Ángel Ríos1,2.
Abstract
A rapid and sensitive technique for frauds determination in vanilla flavors was developed. The method comprises separation by liquid chromatography followed by an electrochemical detection using a homemade screen-printed carbon electrode modified with aluminium-doped zirconia nanoparticles (Al-ZrO2-NPs/SPCE). The prepared nanomaterials (Al-ZrO2-NPs) were characterized by using X-ray diffraction (XRD), transmission electron microscopy (TEM) and energy dispersive X-ray (EDX). This method allows for the determination of six phenolic compounds of vanilla flavors, namely, vanillin, p-hydroxybenzoic acid, p-hydroxybenzaldehyde, vanillyl alcohol, vanillic acid and ethyl vanillin in a linear range between 0.5 and 25 µg g-1, with relative standard deviation values from 2.89 to 4.76%. Meanwhile, the limits of detection and quantification were in the range of 0.10 to 0.14 µg g-1 and 0.33 to 0.48 µg g-1, respectively. In addition, the Al-ZrO2-NPs/SPCE method displayed a good reproducibility, high sensitivity, and good selectivity towards the determination of the vanilla phenolic compounds, making it suitable for the determination of vanilla phenolic compounds in vanilla real extracts products.Entities:
Keywords: HPLC-electrochemical detection; aluminium doped zirconia nanoparticles; food samples; screen-printed carbon electrode; vanilla
Mesh:
Substances:
Year: 2022 PMID: 35566264 PMCID: PMC9105493 DOI: 10.3390/molecules27092915
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.927
Figure 1Comparison between the electrochemical response of vanilla phenolic compounds at (A) Al-ZrO2-NPs/SPCE, (B) non-modified SPCE and (C) CNT-SPCE. Peak identification; 1: V-OH, 2: p-HBA, 3: VA, 4: p-HB, 5: Van and 6: Evan.
Figure 2Hydrodynamic voltammogram showing the impact of the applied potential to the Al-ZrO2-NPs-modified SPCE on the analytical signal of the six vanilla phenolic compounds.
Figure 3Chromatogram of the six vanilla phenolic compounds with amperometric detection at Al-ZrO2-NPs/SPCE.
Figures of merit for the determination of vanilla phenolic compounds by LC-ECD developed method.
| Markers | Linear Range | A = (a ± Sa)C + (b ± Sb) | R2 | LOD (µg g−1) | LOQ (µg g−1) | RSD |
|---|---|---|---|---|---|---|
| V-OH | 0.5–25 | A = (9.76 × 10−7 ± 7.68 × 10−9 )C + (1.27 × 10−7 ± 3.59 × 10−8) | 0.9997 | 0.11 | 0.36 | 3.94 |
| p-HBA | 0.5–25 | A = (3.62 × 10−7 ± 3.4 × 10−9)C − (1.16 × 10−7 ± 1.73 × 10−8) | 0.9997 | 0.14 | 0.47 | 4.32 |
| VA | 0.5–25 | A = (1.06 × 10−6 ± 1.07 × 10−8)C − (1.01 × 10−8 ± 5.01 × 10−8) | 0.9995 | 0.14 | 0.46 | 2.89 |
| p-HB | 0.5–25 | A = (1.63 × 10−7 ± 1.07 × 10−9)C − (1.88 × 10−8 ± 5.46 × 10−9) | 0.9998 | 0.10 | 0.33 | 4.33 |
| Van | 0.5–25 | A = (1.31 × 10−6 ± 1.37 × 10−8)C + (1.15 × 10−7 ± 6.39 × 10−8) | 0.9995 | 0.14 | 0.48 | 4.76 |
| EVan | 0.5–25 | A = (1.39 × 10−6 ± 1.44 × 10−8)C + (3.68 × 10−7 ± 6.75 × 10−8) | 0.9995 | 0.13 | 0.48 | 3.54 |
Analysis of vanilla real extracts products (A–D) by LC-ECD method.
| Markers | Vanilla Natural Extract (A); µg g−1 | Vanilla Extract Product (B); µg g−1 | Vanilla Extract Product (C); µg g−1 | Vanilla Extract Product (D); µg g−1 | ||||
|---|---|---|---|---|---|---|---|---|
| ED | DAD | ED | DAD | ED | DAD | ED | DAD | |
| V-OH | ND | ND | 31.07 ± 0.32 | 33.07 ± 1.21 | ND | ND | ND | ND |
| p-HBA | 6.67 ± 0.39 | 7.12 ± 0.5 | ND | ND | ND | ND | ND | ND |
| VA | 9.15 ± 0.19 | 8.84 ± 0.07 | ND | ND | ND | ND | ND | ND |
| p-HB | 5.10 ± 0.01 | 6.05 ± 0.14 | ND | ND | ND | ND | ND | ND |
| Van | 98.57 ± 3.61 | 101.5 ± 1.38 | 61.62 ± 0.36 | 59.2 ± 0.81 | 10.25 ± 0.31 | 11.06 ± 0.85 | ND | ND |
| EVan | ND | ND | 66.02 ± 0.9 | 68.41 ± 0.22 | ND | ND | 11.7 ± 0.08 | 10.2 ± 0.26 |
Figure 4Chromatograms obtained by the analysis of four different selected vanilla extract products (A–D).
Predicted values for the assessment of the reliability of the methodology based on non-detected markers involved in the fraud confirmation in sample (C).
| Ratio Level Limits (1): | Ratio Level Limits (1): | Ratio Level Limits (1): | |||
|---|---|---|---|---|---|
| p-HBA (µg g−1) | p-HB (µg g−1) | VA (µg g−1) | |||
| Expected Concentration (2) | LOQ | Expected Concentration (2) | LOQ | Expected Concentration (2) | LOQ |
| 0.093–0.19 | 0.47 | 0.51–1.02 | 0.33 | 0.35–0.68 | 0.46 |
(1) Bibliographic values obtained for both limits in the ratio: owest and highest limit values in the ratio [5,23,24,25,26]. (2) Expected values calculated for the lowest and highest limit values.
Comparison of different electrochemical electrodes for vanillin determination.
| Electrode | Electrochemical Detection | Detection Limit | Ref. |
|---|---|---|---|
| Glassy carbon electrode | Linear sweep voltammetry and square-wave voltammetry | 16 µM | [ |
| PVC/graphite electrode | Amperometric | 290 µM | [ |
| Al-ZrO2-NPs/SPCE | Amperometric | 0.6 µM | This work |