Liquid Shear Exfoliation of MoS2: Preparation, Characterization, and NO2-Sensing Properties
Abstract
:1. Introduction
2. Materials and Methods
2.1. Preparation of MoS2 Dispersion
2.2. MoS2 Thin-Film Fabrication
2.3. Characterization Methods
2.4. Sensor Design, Fabrication and Electrical Performances
2.5. Gas Sensing Measurements
3. Results
3.1. Characterization of MoS2 Nanosheet Dispersions
3.1.1. UV–Visible Spectroscopy
3.1.2. Dynamic Light Scattering
3.1.3. Atomic Force Microscopy
3.1.4. High-Resolution Transmission Electron Microscopy
3.1.5. Raman Spectroscopy
3.2. MoS2 Thin-Film Characterizations
3.2.1. Scanning Electron Microscopy
3.2.2. Atomic Force Microscopy
3.2.3. X-ray Diffraction
3.3. NO2 Sensing Properties
3.3.1. MoS2 Based Sensor’s Performance on NO2 at Room Temperature
3.3.2. The Effect of the Film Thickness on NO2 Gas Sensing Performance
3.3.3. The Effect of the Working Temperature on Gas Sensitivity
3.3.4. Gas-Sensing Mechanism
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Material | Fabrication Method | Type of Sensors | OT (°C) | NO2 Concentration (ppm) | Response (%) | Res/Rec Time (s) | Ref. |
---|---|---|---|---|---|---|---|
MoS2 TFTs | Mechanical exfoliation | FET | RT | 1.2 ppm | 6.1% | >30 min | [34] |
4 L MoS2 | CVD | FET | RT | 10 ppm | 5% | Not reported | [35] |
MoS2 nanosheets | Liquid exfoliation + drop casting | Chemiresistor | RT | 0.5 ppm | 81% | ~110 s/~120 s | [31] |
MoS2/graphene | Mechanical exfoliation + CVD | Chemiresistor | 100 °C | 1.2 ppm | ~3% | Not reported | [36] |
MoS2/PSiNWs | Chemical etching + CVD | Chemiresistor | RT | 1 ppm 5 ppm | 0.27% 5.75% | −/>60 min | [37] |
MoS2 layers | CVD | Chemiresistor | RT | 1 ppm 10 ppm | 0.4% 0.5% | Not reported | [38] |
NbS2 nanosheets | CVD | Chemiresistor | RT | 5 ppm | 18% | 3000 s/9000 s | [39] |
WSe2 monolayer | CVD | Chemiresistor | 250 °C | 100 ppb | - | 18 s/38 s | [40] |
MoS2 nanosheets | Liquid exfoliation + vacuum filtration | Chemiresistor (300 nm) | 30 °C | 1 ppm 5 ppm | 1.5% 4.5% | 114 s/420 s 6 min/60 min | This work |
MoS2 Film Thickness | NO2 Concentration | |
---|---|---|
1 ppm | 2 ppm | |
150 nm | 4.5% | 7% |
300 nm | 1.5% | 1.8% |
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Ni, P.; Dieng, M.; Vanel, J.-C.; Florea, I.; Bouanis, F.Z.; Yassar, A. Liquid Shear Exfoliation of MoS2: Preparation, Characterization, and NO2-Sensing Properties. Nanomaterials 2023, 13, 2502. https://doi.org/10.3390/nano13182502
Ni P, Dieng M, Vanel J-C, Florea I, Bouanis FZ, Yassar A. Liquid Shear Exfoliation of MoS2: Preparation, Characterization, and NO2-Sensing Properties. Nanomaterials. 2023; 13(18):2502. https://doi.org/10.3390/nano13182502
Chicago/Turabian StyleNi, Pingping, Mbaye Dieng, Jean-Charles Vanel, Ileana Florea, Fatima Zahra Bouanis, and Abderrahim Yassar. 2023. "Liquid Shear Exfoliation of MoS2: Preparation, Characterization, and NO2-Sensing Properties" Nanomaterials 13, no. 18: 2502. https://doi.org/10.3390/nano13182502
APA StyleNi, P., Dieng, M., Vanel, J. -C., Florea, I., Bouanis, F. Z., & Yassar, A. (2023). Liquid Shear Exfoliation of MoS2: Preparation, Characterization, and NO2-Sensing Properties. Nanomaterials, 13(18), 2502. https://doi.org/10.3390/nano13182502