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Improved Gas Sensing Capabilities of MoS(2)/Diamond Heterostructures at Room Temperature

[Image: see text] Molybdenum disulfide (MoS(2)) and nanocrystalline diamond (NCD) have attracted considerable attention due to their unique electronic structure and extraordinary physical and chemical properties in many applications, including sensor devices in gas sensing applications. Combining Mo...

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Autores principales: Kočí, Michal, Izsák, Tibor, Vanko, Gabriel, Sojková, Michaela, Hrdá, Jana, Szabó, Ondrej, Husák, Miroslav, Végsö, Karol, Varga, Marian, Kromka, Alexander
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10360066/
https://www.ncbi.nlm.nih.gov/pubmed/37394733
http://dx.doi.org/10.1021/acsami.3c04438
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author Kočí, Michal
Izsák, Tibor
Vanko, Gabriel
Sojková, Michaela
Hrdá, Jana
Szabó, Ondrej
Husák, Miroslav
Végsö, Karol
Varga, Marian
Kromka, Alexander
author_facet Kočí, Michal
Izsák, Tibor
Vanko, Gabriel
Sojková, Michaela
Hrdá, Jana
Szabó, Ondrej
Husák, Miroslav
Végsö, Karol
Varga, Marian
Kromka, Alexander
author_sort Kočí, Michal
collection PubMed
description [Image: see text] Molybdenum disulfide (MoS(2)) and nanocrystalline diamond (NCD) have attracted considerable attention due to their unique electronic structure and extraordinary physical and chemical properties in many applications, including sensor devices in gas sensing applications. Combining MoS(2) and H-terminated NCD (H-NCD) in a heterostructure design can improve the sensing performance due to their mutual advantages. In this study, the synthesis of MoS(2) and H-NCD thin films using appropriate physical/chemical deposition methods and their analysis in terms of gas sensing properties in their individual and combined forms are demonstrated. The sensitivity and time domain characteristics of the sensors were investigated for three gases: oxidizing NO(2), reducing NH(3), and neutral synthetic air. It was observed that the MoS(2)/H-NCD heterostructure-based gas sensor exhibits improved sensitivity to oxidizing NO(2) (0.157%·ppm(–1)) and reducing NH(3) (0.188%·ppm(–1)) gases compared to pure active materials (pure MoS(2) achieves responses of 0.018%·ppm(–1) for NO(2) and −0.0072%·ppm(–1) for NH(3), respectively, and almost no response for pure H-NCD at room temperature). Different gas interaction model pathways were developed to describe the current flow mechanism through the sensing area with/without the heterostructure. The gas interaction model independently considers the influence of each material (chemisorption for MoS(2) and surface doping mechanism for H-NCD) as well as the current flow mechanism through the formed P–N heterojunction.
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spelling pubmed-103600662023-07-22 Improved Gas Sensing Capabilities of MoS(2)/Diamond Heterostructures at Room Temperature Kočí, Michal Izsák, Tibor Vanko, Gabriel Sojková, Michaela Hrdá, Jana Szabó, Ondrej Husák, Miroslav Végsö, Karol Varga, Marian Kromka, Alexander ACS Appl Mater Interfaces [Image: see text] Molybdenum disulfide (MoS(2)) and nanocrystalline diamond (NCD) have attracted considerable attention due to their unique electronic structure and extraordinary physical and chemical properties in many applications, including sensor devices in gas sensing applications. Combining MoS(2) and H-terminated NCD (H-NCD) in a heterostructure design can improve the sensing performance due to their mutual advantages. In this study, the synthesis of MoS(2) and H-NCD thin films using appropriate physical/chemical deposition methods and their analysis in terms of gas sensing properties in their individual and combined forms are demonstrated. The sensitivity and time domain characteristics of the sensors were investigated for three gases: oxidizing NO(2), reducing NH(3), and neutral synthetic air. It was observed that the MoS(2)/H-NCD heterostructure-based gas sensor exhibits improved sensitivity to oxidizing NO(2) (0.157%·ppm(–1)) and reducing NH(3) (0.188%·ppm(–1)) gases compared to pure active materials (pure MoS(2) achieves responses of 0.018%·ppm(–1) for NO(2) and −0.0072%·ppm(–1) for NH(3), respectively, and almost no response for pure H-NCD at room temperature). Different gas interaction model pathways were developed to describe the current flow mechanism through the sensing area with/without the heterostructure. The gas interaction model independently considers the influence of each material (chemisorption for MoS(2) and surface doping mechanism for H-NCD) as well as the current flow mechanism through the formed P–N heterojunction. American Chemical Society 2023-07-03 /pmc/articles/PMC10360066/ /pubmed/37394733 http://dx.doi.org/10.1021/acsami.3c04438 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Kočí, Michal
Izsák, Tibor
Vanko, Gabriel
Sojková, Michaela
Hrdá, Jana
Szabó, Ondrej
Husák, Miroslav
Végsö, Karol
Varga, Marian
Kromka, Alexander
Improved Gas Sensing Capabilities of MoS(2)/Diamond Heterostructures at Room Temperature
title Improved Gas Sensing Capabilities of MoS(2)/Diamond Heterostructures at Room Temperature
title_full Improved Gas Sensing Capabilities of MoS(2)/Diamond Heterostructures at Room Temperature
title_fullStr Improved Gas Sensing Capabilities of MoS(2)/Diamond Heterostructures at Room Temperature
title_full_unstemmed Improved Gas Sensing Capabilities of MoS(2)/Diamond Heterostructures at Room Temperature
title_short Improved Gas Sensing Capabilities of MoS(2)/Diamond Heterostructures at Room Temperature
title_sort improved gas sensing capabilities of mos(2)/diamond heterostructures at room temperature
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10360066/
https://www.ncbi.nlm.nih.gov/pubmed/37394733
http://dx.doi.org/10.1021/acsami.3c04438
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