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Electrocatalytic reduction of nitrite at a carbon fiber microelectrode chemically modified by palladium(II)-substituted Dawson type heptadecatungstodiphosphate

Authors :
Wenliang Sun
Litong Jin
Song Zhang
Xinrong Lin
Jiaqi Deng
Songling Jin
Jilie Kong
Source :
Journal of Electroanalytical Chemistry. 469:63-71
Publication Year :
1999
Publisher :
Elsevier BV, 1999.

Abstract

A new type of chemically modified electrode (CME) was fabricated by electrodeposition of palladium(II)-substituted Dawson type heptadecatungstodiphosphate, K 8 [P 2 W 17 O 61 Pd(H 2 O)] (abbreviated as P 2 W 17 Pd in the following), onto a carbon fiber microelectrode (CFME). A pair of waves was observed on the P 2 W 17 Pd CFME, which is ascribed to the redox process of the palladium center in the heteropolytungstate. After continuous potential scanning for 30 min in a pH 4.0 buffer, 92% of the original electrode response remained for the P 2 W 17 Pd CFME. The P 2 W 17 Pd CFME had high electrocatalytic activity for nitrite reduction and exhibited good reproducibility and stability. The catalytic peak current was found to be linear with the nitrite concentration in the range of 1.0×10 −7 ∼1.2×10 −3 mol l −1 (at 25°C) with a correlation coefficient of 0.9886. The detection limit (signal/noise=3) was found to be 2.0×10 −8 mol l −1 . The response time of the microsensor for nitrite measurement was less than 15 s. For 10 parallel measurements of 1.0×10 −5 mol l −1 nitrite, the relative standard deviation (RSD) was found to be 4.5%. The sensitivity of the microsensor was 0.57 nA (μmol l −1 ) −1 . The P 2 W 17 Pd CME was applied successfully as an electrochemical detector (ECD) to determine the nitrite level in rat brain by flow injection analysis (FIA) coupled with microdialysis sampling. The linear range was over three orders of magnitude and the detection limit was 3.0 pmol for nitrite determination. The mechanism of the catalytic reaction was also addressed.

Details

ISSN :
15726657
Volume :
469
Database :
OpenAIRE
Journal :
Journal of Electroanalytical Chemistry
Accession number :
edsair.doi...........e9b93ca6f35a994dbad29554606e1d27
Full Text :
https://doi.org/10.1016/s0022-0728(99)00191-6