Study on Porosity in Zinc Oxide Ultrathin Films from Three-Step MLD Zn-Hybrid Polymers
Deriving mesoporous ZnO from calcinated, molecular layer deposited (MLD) metal-organic hybrid thin films offers various advantages, e.g., tunable crystallinity and porosity, as well as great film conformality and thickness control. However, such methods have barely been investigated. In this contrib...
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doaj-b2dbab3b7c704be89048e0c30a423cfd2021-03-16T00:02:24ZengMDPI AGMaterials1996-19442021-03-01141418141810.3390/ma14061418Study on Porosity in Zinc Oxide Ultrathin Films from Three-Step MLD Zn-Hybrid PolymersRichard Berger0Martin Seiler1Alberto Perrotta2Anna Maria Coclite3Institute for Solid State Physics, Graz University of Technology, NAWI Graz, Petersgasse 16, 8010 Graz, AustriaInstitute for Solid State Physics, Graz University of Technology, NAWI Graz, Petersgasse 16, 8010 Graz, AustriaInstitute for Solid State Physics, Graz University of Technology, NAWI Graz, Petersgasse 16, 8010 Graz, AustriaInstitute for Solid State Physics, Graz University of Technology, NAWI Graz, Petersgasse 16, 8010 Graz, AustriaDeriving mesoporous ZnO from calcinated, molecular layer deposited (MLD) metal-organic hybrid thin films offers various advantages, e.g., tunable crystallinity and porosity, as well as great film conformality and thickness control. However, such methods have barely been investigated. In this contribution, zinc-organic hybrid layers were for the first time formed via a three-step MLD sequence, using diethylzinc, ethanolamine, and maleic anhydride. These zinc‑organic hybrid films were then calcinated with the aim of enhancing the porosity of the obtained ZnO films. The saturation curves for the three-step MLD process were measured, showing a growth rate of 4.4 ± 0.2 Å/cycle. After initial degradation, the zinc-organic layers were found to be stable in ambient air. The transformation behavior of the zinc-organic layers, i.e., the evolution of the film thickness and refractive index as well as the pore formation upon heating to 400, 500, and 600 °C were investigated with the help of spectroscopic ellipsometry and ellipsometric porosimetry. The calculated pore size distribution showed open porosity values of 25%, for the sample calcinated at 400 °C. The corresponding expectation value for the pore radius obtained from this distribution was 2.8 nm.https://www.mdpi.com/1996-1944/14/6/1418molecular layer depositionporosimetric ellipsometryporous materialszinc oxide |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Richard Berger Martin Seiler Alberto Perrotta Anna Maria Coclite |
spellingShingle |
Richard Berger Martin Seiler Alberto Perrotta Anna Maria Coclite Study on Porosity in Zinc Oxide Ultrathin Films from Three-Step MLD Zn-Hybrid Polymers Materials molecular layer deposition porosimetric ellipsometry porous materials zinc oxide |
author_facet |
Richard Berger Martin Seiler Alberto Perrotta Anna Maria Coclite |
author_sort |
Richard Berger |
title |
Study on Porosity in Zinc Oxide Ultrathin Films from Three-Step MLD Zn-Hybrid Polymers |
title_short |
Study on Porosity in Zinc Oxide Ultrathin Films from Three-Step MLD Zn-Hybrid Polymers |
title_full |
Study on Porosity in Zinc Oxide Ultrathin Films from Three-Step MLD Zn-Hybrid Polymers |
title_fullStr |
Study on Porosity in Zinc Oxide Ultrathin Films from Three-Step MLD Zn-Hybrid Polymers |
title_full_unstemmed |
Study on Porosity in Zinc Oxide Ultrathin Films from Three-Step MLD Zn-Hybrid Polymers |
title_sort |
study on porosity in zinc oxide ultrathin films from three-step mld zn-hybrid polymers |
publisher |
MDPI AG |
series |
Materials |
issn |
1996-1944 |
publishDate |
2021-03-01 |
description |
Deriving mesoporous ZnO from calcinated, molecular layer deposited (MLD) metal-organic hybrid thin films offers various advantages, e.g., tunable crystallinity and porosity, as well as great film conformality and thickness control. However, such methods have barely been investigated. In this contribution, zinc-organic hybrid layers were for the first time formed via a three-step MLD sequence, using diethylzinc, ethanolamine, and maleic anhydride. These zinc‑organic hybrid films were then calcinated with the aim of enhancing the porosity of the obtained ZnO films. The saturation curves for the three-step MLD process were measured, showing a growth rate of 4.4 ± 0.2 Å/cycle. After initial degradation, the zinc-organic layers were found to be stable in ambient air. The transformation behavior of the zinc-organic layers, i.e., the evolution of the film thickness and refractive index as well as the pore formation upon heating to 400, 500, and 600 °C were investigated with the help of spectroscopic ellipsometry and ellipsometric porosimetry. The calculated pore size distribution showed open porosity values of 25%, for the sample calcinated at 400 °C. The corresponding expectation value for the pore radius obtained from this distribution was 2.8 nm. |
topic |
molecular layer deposition porosimetric ellipsometry porous materials zinc oxide |
url |
https://www.mdpi.com/1996-1944/14/6/1418 |
work_keys_str_mv |
AT richardberger studyonporosityinzincoxideultrathinfilmsfromthreestepmldznhybridpolymers AT martinseiler studyonporosityinzincoxideultrathinfilmsfromthreestepmldznhybridpolymers AT albertoperrotta studyonporosityinzincoxideultrathinfilmsfromthreestepmldznhybridpolymers AT annamariacoclite studyonporosityinzincoxideultrathinfilmsfromthreestepmldznhybridpolymers |
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