Novel method for the detection of short trace gas pulses with metal oxide semiconductor gas sensors
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Published:2018-05-28
Issue:1
Volume:7
Page:411-419
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ISSN:2194-878X
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Container-title:Journal of Sensors and Sensor Systems
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language:en
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Short-container-title:J. Sens. Sens. Syst.
Author:
Baur Tobias,Schultealbert Caroline,Schütze Andreas,Sauerwald Tilman
Abstract
Abstract. A novel method for the detection of short pulses of gas at very low
concentrations, the differential surface reduction (DSR), is presented. DSR
is related to the temperature pulsed reduction (TPR) method. In a high
temperature phase, e.g., at 400 ∘C, the surface of a metal oxide
semiconductor gas sensor (MOS) is oxidized in air and then cooled abruptly
down to, e.g., 100 ∘C, conserving the large excess of negative
surface charge. In this state reactions of reducing gases with surface oxygen
are strongly favored, which increases the sensitivity. Due to the large
energy barrier between metal oxide grains caused by the excess surface
charge, a highly precise electrical measurement at very low conductance (down
to 10−11 S) is a prerequisite for this method. Moreover, the electrical
measurement must be very fast to allow a good resolution of retention times.
Applying the method to a doped SnO2 detector, gas pulses down to a
dosage of 1 ppb times seconds can be detected. The gas transport inside the
detector is simulated using the finite element method (FEM) to optimize the
gas transport and to keep response and recovery time as short as possible.
With this approach, we have demonstrated a detection limit for ethanol of
below 47 fg.
Publisher
Copernicus GmbH
Subject
Electrical and Electronic Engineering,Instrumentation
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