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Article

Simulations of Benzene and Hydrogen-Sulfide Gas Detector Based on Single-Walled Carbon Nanotube over Intrinsic 4H-SiC Substrate

Thomas Johan Seebeck Department of Electronics, Tallinn University of Technology, Ehitajate tee 5, 12616 Tallinn, Estonia
*
Author to whom correspondence should be addressed.
Micromachines 2020, 11(5), 453; https://doi.org/10.3390/mi11050453
Submission received: 3 March 2020 / Revised: 17 April 2020 / Accepted: 23 April 2020 / Published: 26 April 2020
(This article belongs to the Special Issue Conductive Nanomaterial-Based Chem/Bio Sensors)

Abstract

Carbon nanotubes (CNTs)-based sensors have gained significant importance due to their tremendous electrical and physical attributes. CNT-based gas sensors have high sensitivity, stability, and fast response time compared to that of solid-state sensors. On exposure to a large variety of organic and inorganic compounds, the conductivity of CNT changes. This change in electrical conductivity is being used as a detection signal to detect different target molecules. Hydrogen-sulfide and benzene are hazardous gases that can cause serious health issues in humans. Therefore, it is mandatory to detect their presence in industrial and household environments. In this article, we simulated CNT-based benzene and hydrogen-sulfide sensor with a nanoscale semiconductor device simulator—Quantumwise Atomistix Toolkit (ATK). The change in the device density of states, electric current, and photocurrent in the presence of target molecules have been calculated. The change in photocurrent in the presence of target molecules has been proposed as a novel detection mechanism to improve the sensor selectivity and accuracy. This change in photocurrent as well as electric current in the presence of target molecules can be used simultaneously as detection signals. Our intension in the future is to physically fabricate this simulated device and use photocurrent as well as electric current as detection mechanisms.
Keywords: carbon nanotube; benzene; hydrogen sulfide; sensor; detector; photocurrent; 4H-SiC carbon nanotube; benzene; hydrogen sulfide; sensor; detector; photocurrent; 4H-SiC

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MDPI and ACS Style

Rashid, M.H.; Koel, A.; Rang, T.; Ziko, M.H. Simulations of Benzene and Hydrogen-Sulfide Gas Detector Based on Single-Walled Carbon Nanotube over Intrinsic 4H-SiC Substrate. Micromachines 2020, 11, 453. https://doi.org/10.3390/mi11050453

AMA Style

Rashid MH, Koel A, Rang T, Ziko MH. Simulations of Benzene and Hydrogen-Sulfide Gas Detector Based on Single-Walled Carbon Nanotube over Intrinsic 4H-SiC Substrate. Micromachines. 2020; 11(5):453. https://doi.org/10.3390/mi11050453

Chicago/Turabian Style

Rashid, Muhammad Haroon, Ants Koel, Toomas Rang, and Mehadi Hasan Ziko. 2020. "Simulations of Benzene and Hydrogen-Sulfide Gas Detector Based on Single-Walled Carbon Nanotube over Intrinsic 4H-SiC Substrate" Micromachines 11, no. 5: 453. https://doi.org/10.3390/mi11050453

APA Style

Rashid, M. H., Koel, A., Rang, T., & Ziko, M. H. (2020). Simulations of Benzene and Hydrogen-Sulfide Gas Detector Based on Single-Walled Carbon Nanotube over Intrinsic 4H-SiC Substrate. Micromachines, 11(5), 453. https://doi.org/10.3390/mi11050453

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