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Isotropic Atomic Layer Etching of ZnO Using Acetylacetone and O(2) Plasma

[Image: see text] Atomic layer etching (ALE) provides Ångström-level control over material removal and holds potential for addressing the challenges in nanomanufacturing faced by conventional etching techniques. Recent research has led to the development of two main classes of ALE: ion-driven plasma...

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Autores principales: Mameli, A., Verheijen, M. A., Mackus, A. J. M., Kessels, W. M. M., Roozeboom, F.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2018
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6225338/
https://www.ncbi.nlm.nih.gov/pubmed/30286289
http://dx.doi.org/10.1021/acsami.8b12767
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author Mameli, A.
Verheijen, M. A.
Mackus, A. J. M.
Kessels, W. M. M.
Roozeboom, F.
author_facet Mameli, A.
Verheijen, M. A.
Mackus, A. J. M.
Kessels, W. M. M.
Roozeboom, F.
author_sort Mameli, A.
collection PubMed
description [Image: see text] Atomic layer etching (ALE) provides Ångström-level control over material removal and holds potential for addressing the challenges in nanomanufacturing faced by conventional etching techniques. Recent research has led to the development of two main classes of ALE: ion-driven plasma processes yielding anisotropic (or directional) etch profiles and thermally driven processes for isotropic material removal. In this work, we extend the possibilities to obtain isotropic etching by introducing a plasma-based ALE process for ZnO which is radical-driven and utilizes acetylacetone (Hacac) and O(2) plasma as reactants. In situ spectroscopic ellipsometry measurements indicate self-limiting half-reactions with etch rates ranging from 0.5 to 1.3 Å/cycle at temperatures between 100 and 250 °C. The ALE process was demonstrated on planar and three-dimensional substrates consisting of a regular array of semiconductor nanowires (NWs) conformally covered using atomic layer deposition of ZnO. Transmission electron microscopy studies conducted on the ZnO-covered NWs before and after ALE proved the isotropic nature and the damage-free characteristics of the process. In situ infrared spectroscopy measurements were used to elucidate the self-limiting nature of the ALE half-reactions and the reaction mechanism. During the Hacac etching reaction that is assumed to produce Zn(acac)(2), carbonaceous species adsorbed on the ZnO surface are suggested as the cause of the self-limiting behavior. The subsequent O(2) plasma step resets the surface for the next ALE cycle. High etch selectivities (∼80:1) over SiO(2) and HfO(2) were demonstrated. Preliminary results indicate that the etching process can be extended to other oxides such as Al(2)O(3).
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spelling pubmed-62253382018-11-11 Isotropic Atomic Layer Etching of ZnO Using Acetylacetone and O(2) Plasma Mameli, A. Verheijen, M. A. Mackus, A. J. M. Kessels, W. M. M. Roozeboom, F. ACS Appl Mater Interfaces [Image: see text] Atomic layer etching (ALE) provides Ångström-level control over material removal and holds potential for addressing the challenges in nanomanufacturing faced by conventional etching techniques. Recent research has led to the development of two main classes of ALE: ion-driven plasma processes yielding anisotropic (or directional) etch profiles and thermally driven processes for isotropic material removal. In this work, we extend the possibilities to obtain isotropic etching by introducing a plasma-based ALE process for ZnO which is radical-driven and utilizes acetylacetone (Hacac) and O(2) plasma as reactants. In situ spectroscopic ellipsometry measurements indicate self-limiting half-reactions with etch rates ranging from 0.5 to 1.3 Å/cycle at temperatures between 100 and 250 °C. The ALE process was demonstrated on planar and three-dimensional substrates consisting of a regular array of semiconductor nanowires (NWs) conformally covered using atomic layer deposition of ZnO. Transmission electron microscopy studies conducted on the ZnO-covered NWs before and after ALE proved the isotropic nature and the damage-free characteristics of the process. In situ infrared spectroscopy measurements were used to elucidate the self-limiting nature of the ALE half-reactions and the reaction mechanism. During the Hacac etching reaction that is assumed to produce Zn(acac)(2), carbonaceous species adsorbed on the ZnO surface are suggested as the cause of the self-limiting behavior. The subsequent O(2) plasma step resets the surface for the next ALE cycle. High etch selectivities (∼80:1) over SiO(2) and HfO(2) were demonstrated. Preliminary results indicate that the etching process can be extended to other oxides such as Al(2)O(3). American Chemical Society 2018-10-04 2018-11-07 /pmc/articles/PMC6225338/ /pubmed/30286289 http://dx.doi.org/10.1021/acsami.8b12767 Text en Copyright © 2018 American Chemical Society This is an open access article published under a Creative Commons Non-Commercial No Derivative Works (CC-BY-NC-ND) Attribution License (http://pubs.acs.org/page/policy/authorchoice_ccbyncnd_termsofuse.html) , which permits copying and redistribution of the article, and creation of adaptations, all for non-commercial purposes.
spellingShingle Mameli, A.
Verheijen, M. A.
Mackus, A. J. M.
Kessels, W. M. M.
Roozeboom, F.
Isotropic Atomic Layer Etching of ZnO Using Acetylacetone and O(2) Plasma
title Isotropic Atomic Layer Etching of ZnO Using Acetylacetone and O(2) Plasma
title_full Isotropic Atomic Layer Etching of ZnO Using Acetylacetone and O(2) Plasma
title_fullStr Isotropic Atomic Layer Etching of ZnO Using Acetylacetone and O(2) Plasma
title_full_unstemmed Isotropic Atomic Layer Etching of ZnO Using Acetylacetone and O(2) Plasma
title_short Isotropic Atomic Layer Etching of ZnO Using Acetylacetone and O(2) Plasma
title_sort isotropic atomic layer etching of zno using acetylacetone and o(2) plasma
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6225338/
https://www.ncbi.nlm.nih.gov/pubmed/30286289
http://dx.doi.org/10.1021/acsami.8b12767
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