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Modeling and Simulation of DC Glow Discharges in the AlGaSb coupled Ar/H2 Hybrid Micro Plasma System

dc.contributor.authorOngun, Erhan
dc.contributor.authorUtaş, Selçuk
dc.contributor.authorKurt, Hilal
dc.contributor.authorHançerlioğulları, Aybaba
dc.date.accessioned2026-01-04T21:42:01Z
dc.date.issued2025-01-24
dc.description.abstractSeveral studies have been reported on the theoretical and experimental investigation of gas discharge - semiconductor micro plasma systems (GDSµPS). In this study, a two-dimensional fluid model of a micro plasma in a square direct-current (DC) glow-discharge chamber is simulated using the finite-element method (FEM) solver COMSOL Multiphysics based on the mixture-averaged diffusion-drift theory of gas discharges and Maxwellian electron energy distribution function. A unique III-antimonide high-Ohmic semi-insulating aluminum gallium antimonide (AlGaSb) with finely digitated electron emission surface is modeled as planar cathode electrode coupled to ITO/SiO2 planar anode electrode across a gas discharge gap of 100 µm distance. Argon (Ar) and argon mixed with a mole fraction of 5% hydrogen (Ar/H2) gas medium are seperately introduced into the micro gap at sub-atmospheric pressure of 150 Torr, and the cell is driven at 1.0 kV DC by a stationary power source to simulate the transitions from electron field emission state toward self-sustained normal glow discharge state. The model is simulated to exhibit the transient physical characteristics of the AlGaSb-Ar/H2 glow-discharge micro plasma system by solving the spatio-temporal dynamics of various discharge parameters, including electron density, electron energy density, electron current density and electric potential. It has been observed that a fraction of hydrogen addition to argon can be used as an effective tool in modeling application-specific hybrid micro plasma – semiconductor based infrared photodetector devices.
dc.description.urihttps://doi.org/10.2339/politeknik.1406036
dc.description.urihttps://dergipark.org.tr/tr/pub/politeknik/issue/90122/1406036
dc.identifier.doi10.2339/politeknik.1406036
dc.identifier.eissn2147-9429
dc.identifier.endpage250
dc.identifier.openairedoi_dedup___::9913f32125f638a1ce21a0d035a38ef7
dc.identifier.orcid0009-0007-4966-1044
dc.identifier.orcid0000-0002-9709-516x
dc.identifier.orcid0000-0002-1277-5204
dc.identifier.orcid0000-0002-9830-4226
dc.identifier.startpage243
dc.identifier.urihttps://hdl.handle.net/20.500.12597/42473
dc.identifier.volume28
dc.publisherPoliteknik Dergisi
dc.relation.ispartofPoliteknik Dergisi
dc.rightsOPEN
dc.subjectMalzeme Fiziği
dc.subjectAir-Space Transportation
dc.subjectMaterial Physics
dc.subjectKompozit ve Hibrit Malzemeler
dc.subjectMicroplasma
dc.subjectAlGaSb
dc.subjectDC plasma simulation
dc.subjectinfrared photodetector.
dc.subjectMikroplazma
dc.subjectAlGaSb
dc.subjectDC plazma simülasyon
dc.subjectkızılötesi fotodetektör
dc.subjectHava-Uzay Ulaşımı
dc.subjectComposite and Hybrid Materials
dc.subjectMicro and Nanosystems
dc.subjectMikro ve Nanosistemler
dc.titleModeling and Simulation of DC Glow Discharges in the AlGaSb coupled Ar/H2 Hybrid Micro Plasma System
dc.typeArticle
dspace.entity.typePublication
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In this study, a two-dimensional fluid model of a micro plasma in a square direct-current (DC) glow-discharge chamber is simulated using the finite-element method (FEM) solver COMSOL Multiphysics based on the mixture-averaged diffusion-drift theory of gas discharges and Maxwellian electron energy distribution function. A unique III-antimonide high-Ohmic semi-insulating aluminum gallium antimonide (AlGaSb) with finely digitated electron emission surface is modeled as planar cathode electrode coupled to ITO/SiO2 planar anode electrode across a gas discharge gap of 100 µm distance. Argon (Ar) and argon mixed with a mole fraction of 5% hydrogen (Ar/H2) gas medium are seperately introduced into the micro gap at sub-atmospheric pressure of 150 Torr, and the cell is driven at 1.0 kV DC by a stationary power source to simulate the transitions from electron field emission state toward self-sustained normal glow discharge state. The model is simulated to exhibit the transient physical characteristics of the AlGaSb-Ar/H2 glow-discharge micro plasma system by solving the spatio-temporal dynamics of various discharge parameters, including electron density, electron energy density, electron current density and electric potential. 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