Theoretical Study of the Adsorption and Sensing Properties of Cr-Doped SnP3 Monolayer for Dissolved Characteristic Gases in Oil
Abstract
:1. Introduction
2. Calculation Method and Structural Model
2.1. Parameter Setting
2.2. Dissolved Characteristic Gas in Oil
2.3. Optimised Structural Model of Cr-SnP3
2.4. The Density of States of the Cr-SnP3 Monolayer
3. Analysis of Adsorption Results
3.1. Investigation of the Adsorption Properties of Cr-SnP3 on CO, C2H4, C2H2, CH4, H2, and C2H6
3.2. Density of State
3.3. Differential Charge Density Analysis
3.4. HOMO-LUMO Energy Gaps
3.5. Recovery Time
3.6. Comparison of Intrinsic and Doped SnP3 Monolayers for the Adsorption of Dissolved Gases in Six Oils
4. Conclusions
- (1)
- Compared with the intrinsic SnP3 monolayer, the adsorption effect of a Cr-SnP3 monolayer on six dissolved gases (CO, C2H4, C2H2, CH4, H2, and C2H6) in oil was significantly enhanced. The growth rates of the adsorption energy were 390.4%, 97.9%, 31.7%, 46.3%, 126.1%, and 4.2%, respectively.
- (2)
- The adsorption energies of CO, C2H4, C2H2, CH4, H2, and C2H6 on the Cr-SnP3 monolayer are −1.643, −1.156, −2.129, −0.508, −0.452, and −0.708 eV, respectively. The adsorption strengths were C2H2 > CO > C2H4 > C2H6 > CH4 > H2. The gas molecules of C2H2, CO, and C2H4 undergo chemical adsorption, and the gas molecules of C2H6, CH4, and H2 undergo physical adsorption.
- (3)
- Considering the energy gap and recovery time, the Cr-SnP3 monolayer can be considered a high-performance adsorbent for CO and C2H2 gases and a resistive gas sensor for C2H4.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Lee, H.-J.; Yoon, S.W.; Yoon, Y.-D. Hybrid distribution transformer based on an existing distribution transformer and a series-connected power converter. J. IEEE Trans. Power Deliv. 2022, 37, 4202–4211. [Google Scholar] [CrossRef]
- Ali, M.S.; Omar, A.; Jaafar, A.S.A.; Mohamed, S.H. Conventional methods of dissolved gas analysis using oil-immersed power transformer for fault diagnosis: A review. J. Electr. Power Syst. Res. 2023, 216, 109064. [Google Scholar] [CrossRef]
- Cui, H.; Zhang, X.; Zhang, G.; Tang, J. Pd-doped MoS2 monolayer: A promising candidate for DGA in transformer oil based on DFT method. Appl. Surf. Sci. 2019, 470, 1035–1042. [Google Scholar] [CrossRef]
- Yingang, G.; Wenjun, L.; Xin, H.; Zhuyu, D.; Chao, T.; Lingna, X. Adsorption properties of pristine and Co-doped TiO2 (1 0 1) toward dissolved gas analysis in transformer oil. Appl. Surf. Sci. 2020, 507, 145163. [Google Scholar]
- Chakroborty, S. MXenes: From Research to Emerging Applications; CRC Press: Boca Raton, FL, USA, 2024. [Google Scholar]
- Yupeng, L.; Qu, Z.; Hongwan, M.; Jingxuan, W.; Wen, Z. Gas-sensing mechanism of Cr doped SnP3 monolayer to SF6 partial discharge decomposition components. Appl. Surf. Sci. 2021, 546, 149084. [Google Scholar]
- Zhang, N.; Li, X.; Ruan, S.; Chen, X.; Li, S.; Hu, T. First-Principles Study of Electronic Properties of Substitutionally Doped Monolayer SnP3. J. Mater. 2022, 15, 2462. [Google Scholar] [CrossRef]
- Wu, Y.; Yuan, J.; Li, X.; Zhang, X. GeP3 monolayer as a promising 2D sensing materials in detecting SO2, H2S, SOF2 and SO2F2. J. Phys. Scr. 2024, 99, 085956. [Google Scholar] [CrossRef]
- Sara, A.A.; Cai, X.; Li, X.; Wang, H. 2D-SnP3 as Promising Candidate for NO Sensor with High Sensitivity and Selectivity at Room Temperature: A First-Principles Investigation. Phys. Status Solidi B-Basic Res. 2023, 260, 2300235. [Google Scholar] [CrossRef]
- Wang, C.; Hu, T.; Kan, E. Two-dimensional VDW crystal SnP3 with high carrier mobility and extraordinary sunlight absorbance. Chin. J. Chem. Phys. 2019, 32, 327–332. [Google Scholar] [CrossRef]
- Zhu, X.-L.; Liu, P.-F.; Zhang, J.; Zhang, P.; Zhou, W.-X. Monolayer SnP3: An excellent p-type thermoelectric material. Nanoscale 2019, 11, 19923–19932. [Google Scholar] [CrossRef]
- Song, H.; Zhang, X.; Yuan, P.; Hu, W.; Gao, Z. First-principles study on bilayer SnP3 as a promising thermoelectric material. PCCP 2022, 24, 29693–29699. [Google Scholar] [CrossRef] [PubMed]
- Wang, H.; Hu, X.; Liu, B.; Duan, D. Pd-doped SnP3 monolayer: A new 2D buddy for sensing typical dissolved gases in transformer oil. Appl. Surf. Sci. 2021, 568, 150893. [Google Scholar] [CrossRef]
- Yingang, G.; Xiao, P.; Kai, L.; Zhuyu, D. Adsorption of C2H2, CH4 and CO on Mn-doped graphene: Atomic, electronic, and gas-sensing properties. Physica E 2020, 119, 113959. [Google Scholar]
- Chandra, M.; Yadav, S.; Rawat, R.; Singh, K. Enhancement of magnetoelectric coupling in Cr doped Mn2O3. J. Phys. Condens. Matter 2020, 32, 295703. [Google Scholar] [CrossRef] [PubMed]
- Liao, Y.; Peng, R.; Peng, S.; Zeng, W.; Zhou, Q. The Adsorption of H2 and C2H2 on Ge-Doped and Cr-Doped Graphene Structures: A DFT Study. Nanomaterials 2021, 11, 231. [Google Scholar] [CrossRef] [PubMed]
- Zhang, L.; He, J.; Jiao, W. Synthesis and gas sensing performance of NiO decorated SnO2 vertical-standing nanotubes composite thin films. Sens. Actuator B-Chem. 2019, 281, 326–334. [Google Scholar] [CrossRef]
- Zeng, F.; Qiu, H.; Feng, X.; Chao, X. Ti3C2Tx as a sensor for SF6/N2 nitrogen-containing fault decomposition characteristic products: A theoretical study. Nanomaterials 2022, 12, 2311. [Google Scholar] [CrossRef]
- Wang, M.; Chen, D.; Jia, P. Adsorption and sensing performances of air decomposition components (CO, NOx) on Cr modified graphene surface. Inorg. Chem. Commun. 2023, 157, 111447. [Google Scholar] [CrossRef]
- Liu, Y.; Hou, W.; Zhou, Q.; Chen, W. Investigation on Adsorption and Sensing Performance of Characteristic Gas in Oil on Palladium-doped SnP3 Monolayer Based on Density Functional Theory. Proc. CSEE 2023, 43, 2040–2050. [Google Scholar]
- Wang, M.; Chen, D.; Jia, P. Gas sensitive analysis of composite MoS2(001) surface to air discharge products: A DFT study. IEEE Sens. J. 2023, 23, 22188–22195. [Google Scholar] [CrossRef]
- Chatterjee, S.; Bandyopadhyay, D. Hydrogen storage on MgO supported TiMgn (n = 2–6) clusters: A first principle investigation. J. Int. J. Hydrogen Energy 2024, 77, 1467–1475. [Google Scholar] [CrossRef]
- Braga, L.S.; Leal, D.H.; Kuca, K.; Ramalho, T. Perspectives on the role of the frontier effective-for-reaction molecular orbital (FERMO) in the study of chemical reactivity: An updated review. Curr. Org. Chem. 2020, 24, 314–331. [Google Scholar] [CrossRef]
- Gui, Y.; Chen, Y.; Zhang, X.; Chen, W.; Chen, X. Adsorption Properties of Pd Doped GaNNTs Nanotubes to Transformer Oil Dissolved C2H4 Gas. High Volt. Eng. 2022, 48, 1462–1470. [Google Scholar]
- He, X.; Gui, Y.; Xie, J.; Liu, X.; Wang, Q.; Tang, C. A DFT study of dissolved gas (C2H2, H2, CH4) detection in oil on CuO-modified BNNT. Appl. Surf. Sci. 2020, 500, 144030. [Google Scholar] [CrossRef]
- Wang, C.; Xiang, S.; Wu, J.; Wang, L.; Wang, H.; Wan, S. First-principles study on the adsorption properties of CuO-doped C3N to the decomposition components of C5F10O. J. At. Mol. Phys. 2024, 41, 49–56. [Google Scholar]
System | Eb (eV) | Qt (e) | η (eV) |
---|---|---|---|
TP | −3.123 | 0.087 | 0.0199 |
TSn | −4.600 | 0.210 | 0.1752 |
HpSn | −3.653 | 0.101 | 0.1414 |
HP | −4.143 | 0.151 | 0.1541 |
System | Eads (eV) | Qt (e) | d (Å) |
---|---|---|---|
CO/SnP3 | −0.335 | 0.009 | 2.849 |
C2H4/SnP3 | −0.584 | 0.016 | 3.008 |
C2H2/SnP3 | −1.616 | −0.200 | 2.123 |
CH4/SnP3 | −0.347 | −0.020 | 3.310 |
H2/SnP3 | −0.200 | 0.0007 | 2.500 |
C2H6/SnP3 | −0.679 | 0.005 | 3.325 |
CO/Cr-SnP3 | −1.643 | 0.185 | 1.939 (C-Cr) |
C2H4/Cr-SnP3 | −1.156 | 0.141 | 2.070 (C-Cr) |
C2H2/Cr-SnP3 | −2.129 | 0.173 | 1.896 (C-Cr) |
CH4/Cr-SnP3 | −0.508 | 0.106 | 2.465 (C-Cr) |
H2/Cr-SnP3 | −0.452 | 0.093 | 1.916 (H-Cr) |
C2H6/Cr-SnP3 | −0.708 | 0.117 | 2.254 (C-Cr) |
Gas | Recovery Time/s | |||
---|---|---|---|---|
298 K | 348 K | 398 K | 448 K | |
CO | 5.99 × 1015 | 5.54 × 1011 | 5.76 × 108 | 2.78 × 106 |
C2H4 | 3.50 × 107 | 6.22 × 104 | 4.96 × 102 | 11.12 |
C2H2 | 1.03 × 1024 | 6.88 × 1018 | 9.19 × 1014 | 9.01 × 1011 |
CH4 | 3.87 × 10−4 | 2.69 × 10−5 | 2.38 × 10−6 | 5.44 × 10−7 |
H2 | 4.06 × 10−5 | 3.27 × 10−6 | 4.97 × 10−7 | 1.15 × 10−7 |
C2H6 | 6.83 × 10−1 | 1.41 × 10−2 | 5.59 × 10−4 | 7.45 × 10−5 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2024 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Wang, C.; Liu, X.; Xie, F.; Wang, X.; Zhang, P. Theoretical Study of the Adsorption and Sensing Properties of Cr-Doped SnP3 Monolayer for Dissolved Characteristic Gases in Oil. Materials 2024, 17, 4812. https://doi.org/10.3390/ma17194812
Wang C, Liu X, Xie F, Wang X, Zhang P. Theoretical Study of the Adsorption and Sensing Properties of Cr-Doped SnP3 Monolayer for Dissolved Characteristic Gases in Oil. Materials. 2024; 17(19):4812. https://doi.org/10.3390/ma17194812
Chicago/Turabian StyleWang, Chengjiang, Xiangjia Liu, Feiyang Xie, Xuze Wang, and Pengdi Zhang. 2024. "Theoretical Study of the Adsorption and Sensing Properties of Cr-Doped SnP3 Monolayer for Dissolved Characteristic Gases in Oil" Materials 17, no. 19: 4812. https://doi.org/10.3390/ma17194812