DocumentCode
3585974
Title
Temperature drift identification in semiconductor gas sensors
Author
Abidin, M.Z. ; Asmat, Arnis ; Hamidon, M.N.
Author_Institution
Fac. of Appl. Sci., Univ. Teknol. MARA, Shah Alam, Malaysia
fYear
2014
Firstpage
63
Lastpage
67
Abstract
The efficiency of metal-oxide (MOX) semiconductor gas sensor is depends on the high accuracy of its performance. In real monitoring situation, the responses of gas sensor are inclined to substantial drift effects that caused by environmental factors (i.e., ambient temperature and humidity) that have reduced the sensor´s accuracy. Therefore, the study aims to identify the probable span of drift in sensor responses that was introduced by ambient temperature variation. Two gas sensors (TGS2600 and TGS2602) were used to observe the drift due to ambient temperature variation (25, 30, 35 and 40°C) in exposure of clean air and 6 ppm toluene. The ambient temperature of 25 °C was set as the starting temperature for drifting point, and used as the baseline for identification of drift occurrence. The probable span of drift was later translated into percentage for easy interpretation. Results show that the sensors resistances were drifted in a wide range with their respective drift percentage as the ambient temperature were increased. The resistances for TGS2600 and TGS2602 were drifted up to 57.61 and 61.21 % in clean air while 40.13 and 9.7 % in 6 ppm toluene, respectively. It can be concluded that the probable span of drifted responses has been identified for TGS2600 and TGS2602 in clean air and 6 ppm toluene due to the variation of ambient temperature beyond 25 °C.
Keywords
MIS devices; environmental factors; gas sensors; organic compounds; temperature sensors; TGS2600; TGS2602; ambient temperature variation; drift occurrence identification; drifting point; environmental factor; metal oxide semiconductor gas sensor; sensor resistance; sensor response; substantial drift effect; temperature 25 degC; temperature drift identification; toluene; Gas detectors; Surface resistance; Temperature control; Temperature measurement; Temperature sensors; Semiconductor gas sensor; drift percentage; temperature drift;
fLanguage
English
Publisher
ieee
Conference_Titel
Systems, Process and Control (ICSPC), 2014 IEEE Conference on
Print_ISBN
978-1-4799-6105-4
Type
conf
DOI
10.1109/SPC.2014.7086231
Filename
7086231
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