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Screen-printed transcutaneous oxygen sensor employing polymer electrolytes

Screen-printed transcutaneous oxygen sensor employing polymer electrolytes
Screen-printed transcutaneous oxygen sensor employing polymer electrolytes
A disposable, transcutaneous oxygen sensor has been designed and implemented using screen-printing technology for all fabrication stages. The sensor incorporates an integral heating element to promote transcutaneous diffusion of blood gases so that a reliable estimation of arterial blood gas concentration can be obtained. The oxygen sensing part of the device consists of a screen-printed Clark cell implemented as electrodes, electrolyte and membrane. A three-electrode configuration is employed with gold working and counter electrodes and a silver/silver chloride reference electrode.
Several different polymer electrolyte and membrane materials were evaluated in the construction of the device, and their performances were compared. A fully automated gas testing rig was constructed to enable oxygen levels to be varied under computer control. Cyclic voltammetry and static analysis of the sensors were carried out at different oxygen concentration levels and in various test environments. Linear relationships were established with an averaged sensitivity level of 0.02 microA(mmHg)(-1) and high regression coefficients of 0.99. The prototype covered with a polytetrafluoroethylene membrane gave the experimental result of I (microA) = -0.025PO2 (mmHg) - 0.085. Several factors influenced the performance of the sensors. The investigations have greatly contributed towards an understanding of the suitability of the materials in achieving a viable, low-cost sensor.
screen-printed, transcutaneous, oxygen sensor, polymer electrolyte
0140-0118
456-463
Lam, Y.Z.
7d07652b-8c3f-4aae-a420-233cc1548dc0
Atkinson, J.K.
5e9729b2-0e1f-400d-a889-c74f6390ea58
Lam, Y.Z.
7d07652b-8c3f-4aae-a420-233cc1548dc0
Atkinson, J.K.
5e9729b2-0e1f-400d-a889-c74f6390ea58

Lam, Y.Z. and Atkinson, J.K. (2003) Screen-printed transcutaneous oxygen sensor employing polymer electrolytes. Medical and Biological Engineering and Computing, 41 (4), 456-463. (doi:10.1007/BF02348089).

Record type: Article

Abstract

A disposable, transcutaneous oxygen sensor has been designed and implemented using screen-printing technology for all fabrication stages. The sensor incorporates an integral heating element to promote transcutaneous diffusion of blood gases so that a reliable estimation of arterial blood gas concentration can be obtained. The oxygen sensing part of the device consists of a screen-printed Clark cell implemented as electrodes, electrolyte and membrane. A three-electrode configuration is employed with gold working and counter electrodes and a silver/silver chloride reference electrode.
Several different polymer electrolyte and membrane materials were evaluated in the construction of the device, and their performances were compared. A fully automated gas testing rig was constructed to enable oxygen levels to be varied under computer control. Cyclic voltammetry and static analysis of the sensors were carried out at different oxygen concentration levels and in various test environments. Linear relationships were established with an averaged sensitivity level of 0.02 microA(mmHg)(-1) and high regression coefficients of 0.99. The prototype covered with a polytetrafluoroethylene membrane gave the experimental result of I (microA) = -0.025PO2 (mmHg) - 0.085. Several factors influenced the performance of the sensors. The investigations have greatly contributed towards an understanding of the suitability of the materials in achieving a viable, low-cost sensor.

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More information

Published date: 4 July 2003
Keywords: screen-printed, transcutaneous, oxygen sensor, polymer electrolyte
Organisations: Engineering Sciences

Identifiers

Local EPrints ID: 22337
URI: http://eprints.soton.ac.uk/id/eprint/22337
ISSN: 0140-0118
PURE UUID: e374c53f-0446-4fff-81df-619f6bd52e02
ORCID for J.K. Atkinson: ORCID iD orcid.org/0000-0003-3411-8034

Catalogue record

Date deposited: 06 Jun 2006
Last modified: 16 Mar 2024 02:32

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Contributors

Author: Y.Z. Lam
Author: J.K. Atkinson ORCID iD

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