446
Views
9
CrossRef citations to date
0
Altmetric
Articles

Novel green phosphorene as a superior gas sensor for dissolved gas analysis in oil transformers: using DFT method

ORCID Icon, , &
Pages 541-550 | Received 12 Aug 2021, Accepted 11 Jan 2022, Published online: 28 Jan 2022

References

  • Cui H, et al. Pd-doped MoS2 monolayer: a promising candidate for DGA in transformer oil based on DFT method. Applied Surface Science. 2019;470:1035–1042.
  • Mengyun W. Statistic analysis of transformer’s faults and defects at voltage 110 kV and above. Distribution & Utilization. 2007;1:1–5.
  • Liu J, et al. Prediction of gas emission from coalface by intrinsic mode SVM modeling. Systems Engineering-Theory & Practice. 2013;33(2):505–511.
  • Uddin AI, Yaqoob U, Chung G-S. Dissolved hydrogen gas analysis in transformer oil using Pd catalyst decorated on ZnO nanorod array. Sensors and Actuators B: Chemical. 2016;226:90–95.
  • Suryavanshi H, Velandy J, Sakthivel M. Wavelet power ratio signature spectrum analysis for prediction of winding insulation defects in transformer and shunt reactor. IEEE Transactions on Dielectrics and Electrical Insulation. 2017;24(4):2649–2659.
  • Zhang Y, et al. An artificial neural network approach to transformer fault diagnosis. IEEE Transactions on Power Delivery. 1996;11(4):1836–1841.
  • Benounis M, et al. NIR and optical fiber sensor for gases detection produced by transformation oil degradation. Sensors and Actuators A: Physical. 2008;141(1):76–83.
  • Ma G-m, et al. High sensitive and reliable fiber Bragg grating hydrogen sensor for fault detection of power transformer. Sensors and Actuators B: Chemical. 2012;169:195–198.
  • Yang F, Jung D, Penner RM. Trace detection of dissolved hydrogen gas in oil using a palladium nanowire array. Analytical Chemistry. 2011;83(24):9472–9477.
  • Luo YT, et al. Fiber Bragg grating hydrogen sensor applied for partial discharge detection in transformer oil. Applied Mechanics and Materials. 2015;738:11–14. Trans Tech Publ
  • Samsudin MR, et al. Fiber Bragg gratings hydrogen sensor for monitoring the degradation of transformer oil. IEEE Sensors Journal. 2016;16(9):2993–2999.
  • Gui Y, et al. Adsorption properties of pristine and Co-doped TiO2 (1 0 1) toward dissolved gas analysis in transformer oil. Applied Surface Science. 2020;507:145163.
  • He X, et al. A DFT study of dissolved gas (C2H2, H2, CH4) detection in oil on CuO-modified BNNT. Applied Surface Science. 2020;500:144030.
  • Tran D, et al. A LSTM based framework for handling multiclass imbalance in DGA botnet detection. Neurocomputing. 2018;275:2401–2413.
  • Yang Z, et al. A novel measuring method of interfacial tension of transformer oil combined PSO optimized SVM and multi frequency ultrasonic technology. IEEE Access. 2019;7:182624–182631.
  • Cilliyuz Y, et al. Measurements and performance evaluations of natural ester and mineral oil-immersed identical transformers. International Journal of Electrical Power & Energy Systems. 2021;125:106517.
  • Kondalkar VV, Park J, Lee K. MEMS hydrogen gas sensor for in-situ monitoring of hydrogen gas in transformer oil. Sensors and Actuators B: Chemical. 2021;326:128989.
  • Gui X, et al. Dissolved gas analysis in transformer oil using Sb-doped graphene: A DFT study. Applied Surface Science. 2020;533:147509.
  • Wang J, et al. Gas sensing mechanism of dissolved gases in transformer oil on Ag–MoS2 monolayer: a DFT study. Physica E: Low-Dimensional Systems and Nanostructures. 2020;118:113947.
  • Jiang T, et al. First-principles calculations of adsorption sensitivity of Au-doped MoS2 gas sensor to main characteristic gases in oil. Journal of Materials Science. 2021;56: 1–11.
  • Zhou Q, et al. First-Principles insight into Pd-doped ZnO monolayers as a promising scavenger for dissolved gas analysis in transformer oil. ACS Omega. 2020;5(28):17801–17807.
  • Li J-Y, Wang P, Akram S. Adsorption and sensing for SF6 decomposed gases by Pt-BN monolayer: a DFT study. Molecular Physics. 2021: e1950856.
  • Liao Y, et al. Theoretical study of dissolved gas molecules in transformer oil adsorbed on intrinsic and Cr-doped InP3 monolayer. Applied Surface Science. 2021;561:149816.
  • Ghambarian M, Azizi Z, Ghashghaee M. Hydrogen detection on black phosphorene doped with Ni, Pd, and Pt: Periodic density functional calculations. International Journal of Hydrogen Energy. 2020;45(32):16298–16309.
  • Ghambarian M, Azizi Z, Ghashghaee M. Functionalization and doping of black phosphorus. In: Black phosphorus. Inamuddin, Boddula R., Asiri A. (eds), Springer, Cham; MA, USA, 2020. p. 1–30.
  • Ghadiri M, Ghashghaee M, Ghambarian M. Defective phosphorene for highly efficient formaldehyde detection: Periodic density functional calculations. Physics Letters A. 2020;384(31):126792.
  • Marjani A, et al. Scandium doping of black phosphorene for enhanced sensitivity to hydrogen sulfide: Periodic DFT calculations. Journal of Physics and Chemistry of Solids. 2021;148:109765.
  • Ghashghaee M, Azizi Z, Ghambarian M. Theoretical insights into hydrogen sensing capabilities of black phosphorene modified through ZnO doping and decoration. International Journal of Hydrogen Energy. 2020;45(33):16918–16928.
  • Ghashghaee M, Azizi Z, Ghambarian M. Substitutional doping of black phosphorene with boron, nitrogen, and arsenic for sulfur trioxide detection: a theoretical perspective. Journal of Sulfur Chemistry. 2020;41(4):399–420.
  • Ghadiri M, Ghambarian M, Ghashghaee M. Detection of CNX cyanogen halides (X = F, Cl) on metal-free defective phosphorene sensor: periodic DFT calculations. Molecular Physics. 2021;119(4):e1819577.
  • Han WH, et al. Prediction of Green phosphorus with tunable direct band Gap and high mobility. J. Phys. Chem. Lett. 2017;8:4627.
  • Kaur S, et al. Monolayer, bilayer, and heterostructures of Green phosphorene for water splitting and photovoltaics. The Journal of Physical Chemistry C. 2018;122(45):26032–26038.
  • Yang G, Ma T, Peng X. Superior mechanical flexibility and strained-engineered direct-indirect band gap transition of Green phosphorene. Applied Physics Letters. 2018;112(24):241904.
  • Aasi A, Aghaei SM, Panchapakesan B. Pt-decorated phosphorene as a propitious room temperature VOCs Gas sensor for sensitive and selective detection of alcohols. Journal of Materials Chemistry C. 2021;9:9242–9250.
  • Aasi A, et al. Phosphorene-based nanosensor for lung cancer detection. In: Nano-, Bio-, info-Tech Sensors and wearable systems. International Society for Optics and Photonics; California, CA,2021;11590:1159009.
  • Aasi A, et al. Computational study on sensing properties of Pd-decorated phosphorene for detecting acetone, ethanol, methanol, and toluene—A density functional theory investigation. Advanced Theory and Simulations. 2021;4(10):2100256.
  • Han WH, et al. Prediction of Green phosphorus with tunable direct band gap and high mobility. The Journal of Physical Chemistry Letters. 2017;8(18):4627–4632.
  • Singh A, et al. Highly sensitive and selective sensing properties of modified Green phosphorene monolayers towards SF6 decomposition gases. Applied Surface Science. 2020;512:145641.
  • Kaewmaraya T, et al. Novel Green phosphorene as a superior chemical gas sensing material. Journal of Hazardous Materials. 2021;401:123340.
  • Taylor J, Guo H, Wang J. Ab initio modeling of quantum transport properties of molecular electronic devices. Physical Review B. 2001;63(24):245407.
  • Brandbyge M, et al. Density-functional method for nonequilibrium electron transport. Physical Review B. 2002;65(16):165401.
  • Simulator Q. Atomistix ToolKit (ATK). 2012
  • Grimme S. Semiempirical GGA-type density functional constructed with a long-range dispersion correction. Journal of Computational Chemistry. 2006;27(15):1787–1799.
  • Grimme S, Mück-Lichtenfeld C, Antony J. Noncovalent interactions between graphene sheets and in multishell (hyper) fullerenes. The Journal of Physical Chemistry C. 2007;111(30):11199–11207.
  • Swetha B, Nagarajan V, Chandiramouli R. Interaction studies of Methanol and ethanol vapors on Green phosphorene sheets: A first-principles study. ChemistrySelect. 2019;4(48):14237–14243.
  • Liu H, Lee JY. Electric field effects on the adsorption of CO on a graphene nanodot and the healing mechanism of a vacancy in a graphene nano. The Journal of Physical Chemistry C. 2012;116(4):3034–3041.
  • Bhuvaneswari R, Nagarajan V, Chandiramouli R. Novel Green phosphorene sheets to detect tear gas molecules-A DFT insight. Journal of Molecular Graphics and Modelling. 2020;100:107706.
  • Mao Z, et al. Applied biaxial strain induced tunable sensing performance of Green phosphorene monolayer towards small molecules: A DFT study. Applied Surface Science. 2021;536:147759.
  • Chen Z, et al. Dissolved gas analysis in transformer oil using Pt-doped WSe 2 monolayer based on first principles method. IEEE Access. 2019;7:72012–72019.
  • Aasi A, Mortazavi B, Panchapakesan B. Two-dimensional PdPS and PdPSe nanosheets: Novel promising sensing platforms for harmful gas molecules. Applied Surface Science. 2021: 152115.
  • Zhang X, et al. Adsorption behaviour of SO2 and SOF2 gas on Rh-doped BNNT: a DFT study. Molecular Physics. 2020;118(1):e1580394.
  • Lin L, et al. Adsorption of CO, H2S and CH4 molecules on SnS2 monolayer: a first-principles study. Molecular Physics. 2021;119(7):e1856429.
  • Höök F, et al. Structural changes in hemoglobin during adsorption to solid surfaces: effects of pH, ionic strength, and ligand binding. Proceedings of the National Academy of Sciences. 1998;95(21):12271–12276.
  • Zhang X, et al. First-principles study of SF6 decomposed gas adsorbed on Au-decorated graphene. Applied Surface Science. 2016;367:259–269.
  • Cui H, et al. Pt & Pd decorated CNT as a workable media for SOF2 sensing: A DFT study. Applied Surface Science. 2019;471:335–341.
  • Clementi Et, Raimondi D-L. Atomic screening constants from SCF functions. The Journal of Chemical Physics. 1963;38(11):2686–2689.
  • Pitt IG, Gilbert RG, Ryan KR. Application of transition-state theory to gas-surface reactions: barrierless adsorption on clean surfaces. The Journal of Physical Chemistry. 1994;98(49):13001–13010.
  • Aasi A, Mehdi Aghaei S, Panchapakesan B. Outstanding performance of transition-metal-decorated single-layer graphene-like BC6N nanosheets for disease biomarker detection in human breath. ACS Omega. 2021;6:4696–4707.
  • Mehdi Aghaei S, Aasi A, Panchapakesan B. Experimental and Theoretical advances in MXene-based Gas sensors. ACS Omega. 2021;6:2450–2461.
  • Zhang X, et al. Experimental sensing and density functional theory study of H2S and SOF2 adsorption on Au-modified graphene. Advanced Science. 2015;2(11):1500101.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.