TEM observations of plasma - thin film interaction

Léon Gerlach, Airat Shafikov (Contributor), Martina Tsvetanova (Contributor), J.M. Sturm (Contributor), Marcelo Ackermann (Contributor)

Research output: Contribution to conferencePosterAcademic

Abstract

Plasma-material interaction is important in different fields ranging from plasma-assisted green chemistry over materials processing like plasma-etching used during fabrication of nanoelectronics.
Metallic thin films improve the heat emissivity, which is essential for preventing fracturing of fragile substrates like thin freestanding silicon nitride membrane exposed to high heat loads. Ruthenium is frequently used as emissivity layer, since it only forms native oxide of <1nm and has good potential to resist reactive plasma environments.
Heat emissivity performance is influenced by thin film morphology. However, the atomic scale morphological change of plasma-exposed thin films is barely reported. Our research presents first observations of hole formation in ruthenium thin films treated by a nitrogen plasma.
Transmission electron microscopy (TEM) provides sub-nm resolution and in combination with custom-made electron transparent Si3N4 membranes it represents an ideal method to study plasma-thin film interaction.
Depending on the film structure, we observed an initial improvement of film coverage followed by plasma-induced hole formation, including details like growth and merging of holes. Dictating driving forces for these processes might originate from surface energies of crystal facets and the bonding state of individual atoms.
With the acquired knowledge, we improved understanding on atomic scale plasma interactions, pushing our knowledge beyond boundaries previously known.
Original languageEnglish
Publication statusPublished - 22 Jan 2025
EventNWO Physics 2025 - Koningshof, Veldhoven, Netherlands
Duration: 21 Jan 202522 Jan 2025

Conference

ConferenceNWO Physics 2025
Country/TerritoryNetherlands
CityVeldhoven
Period21/01/2522/01/25

Keywords

  • Thin films
  • TEM
  • Ruthenium
  • Solid state dewetting
  • Morphological/morphodynamic modeling
  • plasma damage

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