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Enhancing local ionization in micro-gap atmospheric discharge

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dc.contributor.authorLiu, Yize
dc.contributor.authorLe Thomas, Nicolas
dc.contributor.authorLeys, Christophe
dc.contributor.authorNikiforov, Anton
dc.contributor.imecauthorLiu, Yize
dc.contributor.imecauthorLe Thomas, Nicolas
dc.contributor.orcidimecLe Thomas, Nicolas::0000-0003-4797-9642
dc.date.accessioned2025-07-28T03:57:07Z
dc.date.available2025-07-28T03:57:07Z
dc.date.issued2025-JUL 1
dc.description.abstractEnhancement of local ionization in micro-gap atmospheric dielectric barrier discharges is achieved experimentally via spatiotemporal control combining geometric confinement and harmonic excitation, namely adding a second-order harmonic to the applied voltage. Optimizing plasma emission near the dielectric surface is proposed as a possible route for ultraviolet plasma-on-chip sources. This approach aims to overcome the lack of integrated UV sources compatible with photonic integrated circuits (PICs). Reducing the discharge gap down to 100 µm intensifies near-chip ionization and emission by enhancing the sheath electric field and sheath overlapping during polarity reversal. Harmonic excitation, especially with a 270∘ phase difference, amplifies peak gap voltages, redistributing power temporally to further enhance local ionization and emission on the chip surface. Experiments show 48% enhancement in surface emission with the combined techniques, alongside emission profile transitions from multi-layer to single-zone structures as the gap reduces. A 1D plasma model is presented to provide insight into emission characteristics and sheath dynamics, confirming spatiotemporal control of the electric field as a prospective strategy for enhancing surface ionization and efficiently coupling UV plasma emission into PICs.
dc.description.wosFundingTextThe authors would like to thank Ghent University for its financial support via the Special Research Fund (BOF-IOP) under Grant 01IO1320. The work of Nicolas Le Thomas was also supported by the FWO research Project Weave under Grant G033722N.
dc.identifier.doi10.1088/1367-2630/adee3f
dc.identifier.issn1367-2630
dc.identifier.urihttps://imec-publications.be/handle/20.500.12860/45949
dc.publisherIOP Publishing Ltd
dc.source.beginpage1
dc.source.issue7
dc.source.journalNEW JOURNAL OF PHYSICS
dc.source.numberofpages14
dc.source.volume27
dc.subject.keywordsDIELECTRIC-BARRIER DISCHARGES
dc.subject.keywordsCOEFFICIENTS
dc.subject.keywordsHELIUM
dc.title

Enhancing local ionization in micro-gap atmospheric discharge

dc.typeJournal article
dspace.entity.typePublication
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