Articolo in rivista, 2020, ENG, 10.1002/pssa.201900256
Pilz, Julian; Perrotta, Alberto; Leising, Günther; Coclite, Anna Maria
Graz University of Technology, Institute of Solid State Physics
ZnO thin films and nanostructures are applied in various devices due to their interesting optical and electrical properties. Atomic layer deposition (ALD) of ZnO offers unique advantages such as precise thickness control, uniformity, and conformality. Using reactive plasma species as the co-reactant (PE-ALD) allows further enhancement of the material characteristics and tunable properties. The substrate temperature has been reported to be the most influential parameter in this technique, as it affects the growth per cycle (GPC) and material properties. However, an investigation on how the film properties are linked to the GPC is lacking in the literature. Herein, the temperature dependence of several material properties is found closely related to the GPC. The preferential crystal orientation switches from (100) to (002) up to the constant region of the GPC versus temperature, the so-called ALD window. Refractive index and mass density show different slopes in temperature regions outside and within the ALD window. Excitonic absorption is only found for films prepared within the ALD window, and the resistivity drops rapidly above the ALD window. Following these results, more insights can be gained on the ALD growth (especially the role of the ALD window) and ideal temperature ranges for specific applications.
Physica status solidi. A, Applications and materials science (Print) 217 (8)
atomic layer deposition, atomic layer deposition window, plasma, thin films, ZnO
ID: 444949
Year: 2020
Type: Articolo in rivista
Creation: 2021-02-15 16:17:17.000
Last update: 2021-02-15 16:17:17.000
CNR authors
External links
OAI-PMH: Dublin Core
OAI-PMH: Mods
OAI-PMH: RDF
URL: http://www.scopus.com/record/display.url?eid=2-s2.0-85070525910&origin=inward
External IDs
CNR OAI-PMH: oai:it.cnr:prodotti:444949
DOI: 10.1002/pssa.201900256
Scopus: 2-s2.0-85070525910