| Literature DB >> 22666159 |
Kempahanumakkagari Suresh Kumar1, Malingappa Pandurangappa.
Abstract
A sensitive solvent-free extraction protocol for the quantification of arsenic at trace level has been described. It is based on the reaction of arsenic (V) with molybdate in acidic medium in presence of antimony (III) and ascorbic acid as a reducing agent to form a blue-colored arsenomolybdenum blue complex. The complex has been extracted into surfactant phase using Triton X-114, and its absorbance was measured at 690 nm. The detection limit, working range, and the relative standard deviation were found to be 1 ng mL⁻¹, 10-200 ng mL⁻¹, and 1.2%, respectively. The effect of common ions was studied, and the method has been applied to determine trace levels of As(III) and As(V) from a variety of samples like environmental, biological, and commercially procured chemicals.Entities:
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Year: 2012 PMID: 22666159 PMCID: PMC3361300 DOI: 10.1100/2012/837672
Source DB: PubMed Journal: ScientificWorldJournal ISSN: 1537-744X
Figure 1Absorption spectra of arsenomolybdenum blue complex after cloud point extraction.
Figure 2Effect of overall acidity.
Figure 3Effect of Triton X-114 concentration.
Figure 4Effect of molybdate concentration.
Figure 5Effect of ascorbic acid.
Effect of foreign ions.
| Interferent | Tolerance limit ( |
|---|---|
| Ca2+, Cl−, Zn2+, Ni2+, Co2+, F− | >2000 |
| Cd2+, SO4 2 −, I−, NO3 − | >1000 |
| Na+, K+, Mg2+, Fe3+, Fe2+ | 800 |
| Pb2+, Ba2+, Cu2+, Al3+,Hg2+ | 500 |
|
| |
| PO4 3− | 900a |
| 10 | |
| 50b | |
|
| |
| SiO3 2− | 40 |
| 100c | |
aThe white precipitate formed by the addition of the above metal ions was removed by centrifuging the solution, and then the reducing agent was added followed by the surfactant for preconcentrating the formed blue complex.
bThe calcium nitrate was added before adding the molybdate so that phosphate does not form blue complex.
cThe tartaric acid was used to mask the silica interference, otherwise it forms silicomolybdenum blue and causes positive interference.
Analytical merits of the proposed method.
| Linear working range (ng mL−1) | 10–200 |
| Limit of detection (ng mL−1) (3 | 1.0 |
| (Relative standard deviation %) ( | 1.4 |
| Maximum preconcentration factor | 5 |
| Improvement factor | 24 |
Determination of arsenic from commercially procured chemicals.
| Sample | Certified arsenic content (ng) | Arsenic found (ng) | |
|---|---|---|---|
| Proposed method | ICPAES method | ||
| (1) Cupric sulphatea (Analar grade) | 5000 | 4990 ± 24 | 4990 ± 12 |
| (2) Cupric nitrateb (Analar grade) | 1000 | 990.0 ± 9 | 1140 ± 18 |
| (3) Sodium hypophosphite Hydratedc | 4000 | 4001 ± 16 | 3800 ± 10 |
| (4) Amaranth dyed | 3000 | 2900 ± 12 | 3000 ± 15 |
n = 5; the values given here are average of five measurements.
aSample was procured from Glaxo Laboratories (India) Ltd., Mumbai with the following certified composition: Cl: 0.003%; As: 0.0005%; Fe: 0.005%; Ni: 0.015%.
bSample was procured from Glaxo Laboratories(India) Ltd., Mumbai with the following certified composition: Cl: 0.001%; Sulphate: 0.0025%; As: 0.0001%; Fe: 0.005%; Ni: 0.01%; Ba: 0.005%; Pd: 0.001%, Bismuth: 0.001%.
cSample was procured from SD Fine Chem Ltd., Mumbai with the following certified composition. As: 0.0004%; Pb: 0.001.
dSample was procured from SD Fine Chem Ltd., Mumbai with the following certified composition. As: 3 ppm; Pb: 10 ppm.
Determination of arsenic in biological samples.
| Sample | Total As (ng) | As(V) added (ng) | Total As(V) found (ng) | Recovery (%) | |||
|---|---|---|---|---|---|---|---|
| Proposed method | ICPAES method | Proposed method | ICPAES method | Proposed method | ICPAES method | ||
| Hair* | ND | ND | 20 | 19.9 ± 1.2 | 20.0 ± 1.6 | 99.5 | 100 |
| Nail* | ND | ND | 10 | 9.2 ± 1.9 | 9.8 ± 1.1 | 96.2 | 98.0 |
| Urine† | ND | ND | 20 | 19.6 ± 1.2 | 20.3 ± 1.2 | 98.0 | 101.5 |
n = 5; the values given here are average of five measurements.
ND: Not detected.
*Concentration in ng g−1.
†Concentration in ng mL−1.
Determination of arsenic in different environmental samples.
| Sample | As(V) found in samples | As(III) + As(V) found in samples | As(V) added (ng) | Total arsenic | Recovery (%) | |||
|---|---|---|---|---|---|---|---|---|
| Proposed method | Proposed method | ICPAES method | Proposed method | ICPAES method | Proposed method | ICPAES method | ||
| Polluted water* | ND | 500 ± 12 | 499 ± 13 | — | — | — | — | — |
| Bore well water* | ND | 200 ± 13 | 200 ± 11 | 20 | 220 ± 12 | 220 ± 12 | 100 | 100 |
| Polluted soil† | 32 ± 2.0 | 99.0 ± 9.1 | 98.0 ± 8.3 | — | — | — | — | — |
| Spinach leaves† (Spinacia oleracea) | ND | 210 ± 12 | 209 ± 12 | 20 | 230 ± 10 | 229 ± 12 | 100 | 99.5 |
| Tomato leaves† (Lycopersicon esculentum) | ND | 500 ± 15 | 449 ± 11 | 10 | 590 ± 12 | 600 ± 15 | 98.3 | 100 |
n = 5; the values given here are average of five measurements.
ND: Not detected.
*Concentration in ng mL−1.
†Concentration in ng g−1.
Comparison of the proposed method with other methods.
| Method | Linear range (ng mL−1) | Detection limit (ng mL−1) | Preconcentration factor | References |
|---|---|---|---|---|
| (1) Ion-Pair extraction/spectrophotometry | 50–800 | — | 5.0 | [ |
| (2) Chemiluminescent method | 0–100 | 0.4 | 12.5 | [ |
| (3) Spectrophotometry | 0–300 | 4.0 | — | [ |
| (4) Cloud point extraction/spectrophotometry | 10–200 | 1.0 | 5.0 | Proposed method |