Enhanced Electrothermal Analysis for Acetone Gas Detection Based on PolyMUMPs MEMS Sensor

Environmental monitoring for the detection and regulation of toxic gases is of paramount importance. This study proposes the modeling and fabrication of MEMS devices based on the standard Polysilicon Multi-Users MEMS Process (PolyMUMPs) for acetone gas detection. Titanium dioxide (TiO_{2} ) nanopart...

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Published in:IEEE Access
Main Author: Algamili A.S.; Abidin Z.Z.; Khir M.H.B.M.; Ahmed A.Y.; Hashwan S.S.B.; Isyaku U.B.; Al-Dhawi B.N.; Salem A.A.
Format: Article
Language:English
Published: Institute of Electrical and Electronics Engineers Inc. 2024
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85186154457&doi=10.1109%2fACCESS.2024.3365191&partnerID=40&md5=514954ee6f15dd7290bd7ee7942322c1
id 2-s2.0-85186154457
spelling 2-s2.0-85186154457
Algamili A.S.; Abidin Z.Z.; Khir M.H.B.M.; Ahmed A.Y.; Hashwan S.S.B.; Isyaku U.B.; Al-Dhawi B.N.; Salem A.A.
Enhanced Electrothermal Analysis for Acetone Gas Detection Based on PolyMUMPs MEMS Sensor
2024
IEEE Access
12

10.1109/ACCESS.2024.3365191
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85186154457&doi=10.1109%2fACCESS.2024.3365191&partnerID=40&md5=514954ee6f15dd7290bd7ee7942322c1
Environmental monitoring for the detection and regulation of toxic gases is of paramount importance. This study proposes the modeling and fabrication of MEMS devices based on the standard Polysilicon Multi-Users MEMS Process (PolyMUMPs) for acetone gas detection. Titanium dioxide (TiO_{2} ) nanoparticles has been incorporated onto the top sensor's surface, amplifying its detection sensitivity. The study delves into Electrothermal mechanisms that has integrated with the embedded microheater to induce thermal forces. This enhancement significantly improves the acetone gas detection capabilities of the device with high sensitivity and low detection limit. Results include the displacement amplitude of the uncoated PolyMUMPs sensor, with exploration of the coated device's behavior under different heating voltages. Electrothermal actuation is employed, and the output voltage is measured using an MS3110 universal capacitive readout circuit. Comparisons of uncoated and coated devices has been investigated, demonstrating the influence of the sensing material that improve the detection performance. This investigation delves into the impact of varying coating thickness on the PolyMUMPs sensor's performance. The mass sensitivity of the device is found to be 3.8574 mHz/pg, while the detection limit indicates that the device can detect up to 44 part per billion (ppb) at resonance frequency of 7.627 kHz. © 2013 IEEE.
Institute of Electrical and Electronics Engineers Inc.
21693536
English
Article
All Open Access; Gold Open Access
author Algamili A.S.; Abidin Z.Z.; Khir M.H.B.M.; Ahmed A.Y.; Hashwan S.S.B.; Isyaku U.B.; Al-Dhawi B.N.; Salem A.A.
spellingShingle Algamili A.S.; Abidin Z.Z.; Khir M.H.B.M.; Ahmed A.Y.; Hashwan S.S.B.; Isyaku U.B.; Al-Dhawi B.N.; Salem A.A.
Enhanced Electrothermal Analysis for Acetone Gas Detection Based on PolyMUMPs MEMS Sensor
author_facet Algamili A.S.; Abidin Z.Z.; Khir M.H.B.M.; Ahmed A.Y.; Hashwan S.S.B.; Isyaku U.B.; Al-Dhawi B.N.; Salem A.A.
author_sort Algamili A.S.; Abidin Z.Z.; Khir M.H.B.M.; Ahmed A.Y.; Hashwan S.S.B.; Isyaku U.B.; Al-Dhawi B.N.; Salem A.A.
title Enhanced Electrothermal Analysis for Acetone Gas Detection Based on PolyMUMPs MEMS Sensor
title_short Enhanced Electrothermal Analysis for Acetone Gas Detection Based on PolyMUMPs MEMS Sensor
title_full Enhanced Electrothermal Analysis for Acetone Gas Detection Based on PolyMUMPs MEMS Sensor
title_fullStr Enhanced Electrothermal Analysis for Acetone Gas Detection Based on PolyMUMPs MEMS Sensor
title_full_unstemmed Enhanced Electrothermal Analysis for Acetone Gas Detection Based on PolyMUMPs MEMS Sensor
title_sort Enhanced Electrothermal Analysis for Acetone Gas Detection Based on PolyMUMPs MEMS Sensor
publishDate 2024
container_title IEEE Access
container_volume 12
container_issue
doi_str_mv 10.1109/ACCESS.2024.3365191
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85186154457&doi=10.1109%2fACCESS.2024.3365191&partnerID=40&md5=514954ee6f15dd7290bd7ee7942322c1
description Environmental monitoring for the detection and regulation of toxic gases is of paramount importance. This study proposes the modeling and fabrication of MEMS devices based on the standard Polysilicon Multi-Users MEMS Process (PolyMUMPs) for acetone gas detection. Titanium dioxide (TiO_{2} ) nanoparticles has been incorporated onto the top sensor's surface, amplifying its detection sensitivity. The study delves into Electrothermal mechanisms that has integrated with the embedded microheater to induce thermal forces. This enhancement significantly improves the acetone gas detection capabilities of the device with high sensitivity and low detection limit. Results include the displacement amplitude of the uncoated PolyMUMPs sensor, with exploration of the coated device's behavior under different heating voltages. Electrothermal actuation is employed, and the output voltage is measured using an MS3110 universal capacitive readout circuit. Comparisons of uncoated and coated devices has been investigated, demonstrating the influence of the sensing material that improve the detection performance. This investigation delves into the impact of varying coating thickness on the PolyMUMPs sensor's performance. The mass sensitivity of the device is found to be 3.8574 mHz/pg, while the detection limit indicates that the device can detect up to 44 part per billion (ppb) at resonance frequency of 7.627 kHz. © 2013 IEEE.
publisher Institute of Electrical and Electronics Engineers Inc.
issn 21693536
language English
format Article
accesstype All Open Access; Gold Open Access
record_format scopus
collection Scopus
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