| Literature DB >> 29209861 |
Blen Weldegebreal1, Mesfin Redi-Abshiro1, Bhagwan Singh Chandravanshi2.
Abstract
BACKGROUND: This study was conducted to develop fast and cost effective methods for the determination of caffeine in green coffee beans. In the present work direct determination of caffeine in aqueous solution of green coffee bean was performed using FT-IR-ATR and fluorescence spectrophotometry. Caffeine was also directly determined in dimethylformamide solution using NIR spectroscopy with univariate calibration technique.Entities:
Keywords: Caffeine; FT-IR-ATR; Fluorescence spectroscopy; Green coffee beans; NIR
Year: 2017 PMID: 29209861 PMCID: PMC5716962 DOI: 10.1186/s13065-017-0356-3
Source DB: PubMed Journal: Chem Cent J ISSN: 1752-153X Impact factor: 4.215
Fig. 1FT-IR-ATR absorption spectra of standard caffeine in water
Fig. 2Graph of concentration versus integrated peak area for standard caffeine in water
The mean percentage of caffeine obtained by the three methods
| Methods | Mass of coffee (g) | Mass of solution (g)a | Mass of caffeine (g) | Caffeine in coffee (% w/w) | Mean ± SD |
|---|---|---|---|---|---|
| FT-IR-ATR | 2.05 | 10.00 | 0.0334 | 1.629 | 1.520 ± 0.093 |
| NIR | 2.05 | 10.00 | 0.0343 | 1.680 | 1.500 ± 0.14 |
| Fluorescence | 0.5 | 65 | 0.0005682 | 1.434 | 1.497 ± 0.05 |
| UV-Vis (for comparison) | 0.33 | Extracting volume | 0.00453 | 1.373 | 1.397 ± 0.02 |
aThe mass of the solution was measured to avoid any changes in the concentration which may results from the changes in the volume of the solution
Fig. 3FT-IR-ATR absorption spectrum of green coffee beans dissolved in water
Fig. 4Absorbance versus concentration graph of standard caffeine in DMF
Fig. 5NIR spectrum of standard caffeine and coffee dissolved in DMF
Fig. 6Fluorescence excitation spectrum of standard caffeine in water
Fig. 7Graph of maximum excitation intensity vs concentration of standard caffeine
Fig. 8Fluorescence excitation spectrum of coffee dissolved in water
The analytical parameters for the three developed methods
| Methods | Liner range | R | LOD | LOQ | RSD (%) |
|---|---|---|---|---|---|
| FT-IR-ATR | (1–6) g/L | 0.993 | 0.15 g/L | 0.5 g/L | 5.9 |
| NIR | (1–5) g/L | 0.994 | 0.3 g/L | 1 g/L | 9.3* |
| Fluorescence | (5.95 × 10−4–87.3 × 10−4) g/L | 0.998 | 1.75 × 10−4 g/L | 5.82 × 10−4 g/L | 3.7 |
*The relatively higher RSD may be attributed to the high background absorption of solvent water which results in higher noise level
Comparison of the means of each of the three newly developed methods with the mean obtained by UV/Vis spectrophotometer using t test at 95% confidence level
| Methods | Mean ± SD (%) | Degree of freedom | tcalculated | tcritical | Remark |
|---|---|---|---|---|---|
| FT-IR-ATR | 1.52 ± 0.093 | 4 | 2.05 | 2.132 | No significantly different |
| NIR | 1.50 ± 0.14 | 4 | 1.26 | 2.132 | No significantly different |
| Fluorescence | 1.50 ± 0.05 | 4 | 1.97 | 2.132 | No significantly different |