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Laser Printing of Multilayered Alternately Conducting and Insulating Microstructures

[Image: see text] Production of multilayered microstructures composed of conducting and insulating materials is of great interest as they can be utilized as microelectronic components. Current proposed fabrication methods of these microstructures include top-down and bottom-up methods, each having t...

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Autores principales: Edri, Eitan, Armon, Nina, Greenberg, Ehud, Moshe-Tsurel, Shlomit, Lubotzky, Danielle, Salzillo, Tommaso, Perelshtein, Ilana, Tkachev, Maria, Girshevitz, Olga, Shpaisman, Hagay
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8397236/
https://www.ncbi.nlm.nih.gov/pubmed/34296861
http://dx.doi.org/10.1021/acsami.1c06204
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author Edri, Eitan
Armon, Nina
Greenberg, Ehud
Moshe-Tsurel, Shlomit
Lubotzky, Danielle
Salzillo, Tommaso
Perelshtein, Ilana
Tkachev, Maria
Girshevitz, Olga
Shpaisman, Hagay
author_facet Edri, Eitan
Armon, Nina
Greenberg, Ehud
Moshe-Tsurel, Shlomit
Lubotzky, Danielle
Salzillo, Tommaso
Perelshtein, Ilana
Tkachev, Maria
Girshevitz, Olga
Shpaisman, Hagay
author_sort Edri, Eitan
collection PubMed
description [Image: see text] Production of multilayered microstructures composed of conducting and insulating materials is of great interest as they can be utilized as microelectronic components. Current proposed fabrication methods of these microstructures include top-down and bottom-up methods, each having their own set of drawbacks. Laser-based methods were shown to pattern various materials with micron/sub-micron resolution; however, multilayered structures demonstrating conducting/insulating/conducting properties were not yet realized. Here, we demonstrate laser printing of multilayered microstructures consisting of conducting platinum and insulating silicon oxide layers by a combination of thermally driven reactions with microbubble-assisted printing. PtCl(2) dissolved in N-methyl-2-pyrrolidone (NMP) was used as a precursor to form conducting Pt layers, while tetraethyl orthosilicate dissolved in NMP formed insulating silicon oxide layers identified by Raman spectroscopy. We demonstrate control over the height of the insulating layer between ∼50 and 250 nm by varying the laser power and number of iterations. The resistivity of the silicon oxide layer at 0.5 V was 1.5 × 10(11) Ωm. Other materials that we studied were found to be porous and prone to cracking, rendering them irrelevant as insulators. Finally, we show how microfluidics can enhance multilayered laser microprinting by quickly switching between precursors. The concepts presented here could provide new opportunities for simple fabrication of multilayered microelectronic devices.
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spelling pubmed-83972362021-08-31 Laser Printing of Multilayered Alternately Conducting and Insulating Microstructures Edri, Eitan Armon, Nina Greenberg, Ehud Moshe-Tsurel, Shlomit Lubotzky, Danielle Salzillo, Tommaso Perelshtein, Ilana Tkachev, Maria Girshevitz, Olga Shpaisman, Hagay ACS Appl Mater Interfaces [Image: see text] Production of multilayered microstructures composed of conducting and insulating materials is of great interest as they can be utilized as microelectronic components. Current proposed fabrication methods of these microstructures include top-down and bottom-up methods, each having their own set of drawbacks. Laser-based methods were shown to pattern various materials with micron/sub-micron resolution; however, multilayered structures demonstrating conducting/insulating/conducting properties were not yet realized. Here, we demonstrate laser printing of multilayered microstructures consisting of conducting platinum and insulating silicon oxide layers by a combination of thermally driven reactions with microbubble-assisted printing. PtCl(2) dissolved in N-methyl-2-pyrrolidone (NMP) was used as a precursor to form conducting Pt layers, while tetraethyl orthosilicate dissolved in NMP formed insulating silicon oxide layers identified by Raman spectroscopy. We demonstrate control over the height of the insulating layer between ∼50 and 250 nm by varying the laser power and number of iterations. The resistivity of the silicon oxide layer at 0.5 V was 1.5 × 10(11) Ωm. Other materials that we studied were found to be porous and prone to cracking, rendering them irrelevant as insulators. Finally, we show how microfluidics can enhance multilayered laser microprinting by quickly switching between precursors. The concepts presented here could provide new opportunities for simple fabrication of multilayered microelectronic devices. American Chemical Society 2021-07-23 2021-08-04 /pmc/articles/PMC8397236/ /pubmed/34296861 http://dx.doi.org/10.1021/acsami.1c06204 Text en © 2021 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Edri, Eitan
Armon, Nina
Greenberg, Ehud
Moshe-Tsurel, Shlomit
Lubotzky, Danielle
Salzillo, Tommaso
Perelshtein, Ilana
Tkachev, Maria
Girshevitz, Olga
Shpaisman, Hagay
Laser Printing of Multilayered Alternately Conducting and Insulating Microstructures
title Laser Printing of Multilayered Alternately Conducting and Insulating Microstructures
title_full Laser Printing of Multilayered Alternately Conducting and Insulating Microstructures
title_fullStr Laser Printing of Multilayered Alternately Conducting and Insulating Microstructures
title_full_unstemmed Laser Printing of Multilayered Alternately Conducting and Insulating Microstructures
title_short Laser Printing of Multilayered Alternately Conducting and Insulating Microstructures
title_sort laser printing of multilayered alternately conducting and insulating microstructures
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8397236/
https://www.ncbi.nlm.nih.gov/pubmed/34296861
http://dx.doi.org/10.1021/acsami.1c06204
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