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HERO ID
7149280
Reference Type
Journal Article
Title
The development of new microelectrode gas sensors: An odyssey Part V. Simultaneous electrochemical determination of oxygen, carbon dioxide and nitrous oxide gas mixtures in a non-aqueous solvent using membrane shielded gold microelectrodes
Author(s)
Floate, S; Hahn, CEW; ,
Year
2005
Is Peer Reviewed?
1
Journal
Journal of Electroanalytical Chemistry
ISSN:
1572-6657
EISSN:
1873-2569
Publisher
ELSEVIER SCIENCE SA
Location
LAUSANNE
Page Numbers
203-211
DOI
10.1016/j.jelechem.2005.06.004
Web of Science Id
WOS:000231840300005
Abstract
The simultaneous electrochemical reduction of oxygen, carbon dioxide and nitrous oxide was investigated at Au microelectrodes (5 mu m, diam.) in dimethyl sulfoxide (DMSO) solvent, using both voltammetric and potential step chronoamperometric techniques. In agreement with previous voltarnmetric studies, carbon dioxide is shown to react with the superoxide anion radical, formed from the electro-reduction of oxygen (- 1.3 V vs. Ag). This cross-interference reaction complicates the simultaneous detection of all three gases. The presence of nitrous oxide, however, appears to give rise to no deleterious cross-interference reactions with either oxygen or carbon dioxide. By contrast, the use of potential step, chronoamperometric techniques are shown to effectively collapse the deleterious cross-interference reaction between superoxide and carbon dioxide (current enhancement < 2%). In addition, potential step interrogation of the carbon dioxide reduction signal indicates a linear dependence on the concentrations of both oxygen and nitrous oxide. Meanwhile, interrogation of the nitrous oxide reduction signal reveals a proportional current enhancement with the stepwise addition of oxygen but no dependence on the concentration of carbon dioxide. In addition, a "proof of principle" practical sensor design incorporating a polytetrafluoroethylene (PTFE, Teflon((R))) membrane-covered gold microelectrode is described for the simultaneous measurement of oxygen, carbon dioxide and nitrous oxide over a wide concentration range. (c) 2005 Elsevier B.V. All rights reserved.
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