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Cited 3 time in webofscience Cited 4 time in scopus
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Engineering a surface functionalized Pt@SnS2/Ti3C2Tx MXene sensor with humidity tolerance and high sensitivity at room temperature for NH3 detection

Authors
Ranjith, Kugalur ShanmugamSonwal, SonamMohammadi, AliRaju, Ganji Seeta RamaHuh, Yun SukHan, Young-Kyu
Issue Date
Jan-2025
Publisher
Royal Society of Chemistry
Keywords
Aluminum Compounds; Aspect Ratio; Design For Testability; Gallium Phosphide; Germanium Compounds; Heterojunctions; High Temperature Engineering; Humidity Sensors; Indium Phosphide; Iv-vi Semiconductors; Layered Semiconductors; Monolayers; Nitrogen Compounds; Phosphorus Compounds; Schottky Barrier Diodes; Selenium Compounds; Semiconductor Quantum Wells; Silicon Compounds; Storage Tubes; Sulfur Compounds; Tellurium Compounds; Tin Alloys; Tin Dioxide; Titanium Dioxide; Trace Elements; Active Site; Functionalized; High Sensitivity; Hybrid Structure; Nano-flakes; Nh 3; Pt Nanoparticles; Selectively Etchings; Solvothermal Growth; Volatile Organics; Self Assembly
Citation
Journal of Materials Chemistry A, v.13, no.4, pp 2950 - 2964
Pages
15
Indexed
SCIE
SCOPUS
Journal Title
Journal of Materials Chemistry A
Volume
13
Number
4
Start Page
2950
End Page
2964
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/56443
DOI
10.1039/d4ta07108e
ISSN
2050-7488
2050-7496
Abstract
The design of hierarchical heterostructures that can detect volatile organic compounds (VOCs) at room temperature with good selectivity, sensitivity, and humidity tolerance is an intriguing and practically useful area of research. In this study, Pt@SnS2/MXene with a 0D@2D/2D hybrid structure was successfully fabricated by selectively etching Ti3C2Tx MXene with HF and following this with SnS2 solvothermal growth and finally decorating with Pt nanoparticles. Decoration of few layered vertically grown SnS2 nanoflakes with rich active sites provided an electron reservoir that promoted the selectivity, conductivity, and stability of the MXene-based ternary heterostructure during sensing applications. Post-functionalization with trimethoxypropylsilane (TES) formed a monolayer on the ternary heterostructure of Pt@SnS2/MXene by self-assembly, improved moisture resistance and sensitivity, and maximized sensor durability. Interfacial contact of the TES functionalized mixed metal interface facilitated charge transport and the spectral separation required for NH3 sensing at room temperature (Ra/Rg = 22.7, 10 ppm NH3), which was 14.2, 12.6, 8.1, and 3.3-fold greater higher than those of MXene, SnS2, SnS2/MXene, and Pt@SnS/MXene, respectively. The functionalized heterostructure exhibited high response, remarkable relative response (98.7%), a low theoretical detection limit (23 ppb), and long-term stability (nearly 30 days). Furthermore, TES functionalization protected the sensor from humidity and the sensor sensitivity was ascribed to a Schottky barrier and p-n junction at the Pt@SnS2/MXene heterostructure interface. Superior sensing responses were retained at various humidity levels due to the hydrophobicity of TES alkyl chains. In addition, TES captured free electrons on the sensing surface, and thus, maximized the width of the electron depletion layer. The functionalized Pt@SnS2/MXene heterostructure-based template offers a potential means of constructing highly sensitive and durable gas sensors suitable for practical NH3 responsive, flexible wearable electronics.
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