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3D printed solution flow type microdroplet cell for simultaneous area selective anodizing

INTRODUCTION: Recent advancements in 3D printing technology allow us to design and fabricate customized droplets cells for localized electrochemical patterning. OBJECTIVES: In this study, 3D printed solution-flow type microdroplet cell (Sf-MDC) is proposed for localized anodizing of two different re...

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Detalles Bibliográficos
Autores principales: Bilal, Muhammad, Sakairi, Masatoshi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7584678/
https://www.ncbi.nlm.nih.gov/pubmed/33133682
http://dx.doi.org/10.1016/j.jare.2020.06.019
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author Bilal, Muhammad
Sakairi, Masatoshi
author_facet Bilal, Muhammad
Sakairi, Masatoshi
author_sort Bilal, Muhammad
collection PubMed
description INTRODUCTION: Recent advancements in 3D printing technology allow us to design and fabricate customized droplets cells for localized electrochemical patterning. OBJECTIVES: In this study, 3D printed solution-flow type microdroplet cell (Sf-MDC) is proposed for localized anodizing of two different regions on Al surface. The effect of printing orientation on 3D printing parameters is elucidated to minimize the resin consumption, printing time and material wastage. The capability of Sf-MDC to fabricate porous alumina patterns with adjustable pore size and thickness is explored by varying the length of Pt wire inside each capillary. METHODS: The Sf-MDC was optimally fabricated using 3D printer at the highest possible resolution. The Al specimens were electropolished in 13.6 kmolm(−3) CH3COOH/2.56 kmolm(−3) HClO(4) at 278 K and 28 V for 145 s. 0.22 kmolm(−3) oxalic acid (COOH)(2) solution was prepared for anodizing. The specimen was set on pulse-XYZ stage controller and anodized (at 50 V and 323 K) using the Sf-MDC. RESULTS: Anodizing with Sf-MDC resulted in the formation of two uniformly sized porous alumina lines on the specimen. Porous alumina lines exhibited similar pore geometry, interpore distance and pores arrangement, suggesting uniform supply of current to both the droplets. Layered-type cross-sectional structure with each layer having a thickness of 2.7 mm was formed for both the porous alumina lines. By varying the length of Pt wire inside each capillary, porous alumina lines with different porous structure and oxide thickness were simultaneously fabricated. CONCLUSIONS: Simultaneous anodizing with Sf-MDC can be applied for fast fabrication of porous alumina filters with different porous structure and for various patterning applications.
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spelling pubmed-75846782020-10-30 3D printed solution flow type microdroplet cell for simultaneous area selective anodizing Bilal, Muhammad Sakairi, Masatoshi J Adv Res Article INTRODUCTION: Recent advancements in 3D printing technology allow us to design and fabricate customized droplets cells for localized electrochemical patterning. OBJECTIVES: In this study, 3D printed solution-flow type microdroplet cell (Sf-MDC) is proposed for localized anodizing of two different regions on Al surface. The effect of printing orientation on 3D printing parameters is elucidated to minimize the resin consumption, printing time and material wastage. The capability of Sf-MDC to fabricate porous alumina patterns with adjustable pore size and thickness is explored by varying the length of Pt wire inside each capillary. METHODS: The Sf-MDC was optimally fabricated using 3D printer at the highest possible resolution. The Al specimens were electropolished in 13.6 kmolm(−3) CH3COOH/2.56 kmolm(−3) HClO(4) at 278 K and 28 V for 145 s. 0.22 kmolm(−3) oxalic acid (COOH)(2) solution was prepared for anodizing. The specimen was set on pulse-XYZ stage controller and anodized (at 50 V and 323 K) using the Sf-MDC. RESULTS: Anodizing with Sf-MDC resulted in the formation of two uniformly sized porous alumina lines on the specimen. Porous alumina lines exhibited similar pore geometry, interpore distance and pores arrangement, suggesting uniform supply of current to both the droplets. Layered-type cross-sectional structure with each layer having a thickness of 2.7 mm was formed for both the porous alumina lines. By varying the length of Pt wire inside each capillary, porous alumina lines with different porous structure and oxide thickness were simultaneously fabricated. CONCLUSIONS: Simultaneous anodizing with Sf-MDC can be applied for fast fabrication of porous alumina filters with different porous structure and for various patterning applications. Elsevier 2020-06-27 /pmc/articles/PMC7584678/ /pubmed/33133682 http://dx.doi.org/10.1016/j.jare.2020.06.019 Text en © 2020 The Authors. Published by Elsevier B.V. on behalf of Cairo University. http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Bilal, Muhammad
Sakairi, Masatoshi
3D printed solution flow type microdroplet cell for simultaneous area selective anodizing
title 3D printed solution flow type microdroplet cell for simultaneous area selective anodizing
title_full 3D printed solution flow type microdroplet cell for simultaneous area selective anodizing
title_fullStr 3D printed solution flow type microdroplet cell for simultaneous area selective anodizing
title_full_unstemmed 3D printed solution flow type microdroplet cell for simultaneous area selective anodizing
title_short 3D printed solution flow type microdroplet cell for simultaneous area selective anodizing
title_sort 3d printed solution flow type microdroplet cell for simultaneous area selective anodizing
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7584678/
https://www.ncbi.nlm.nih.gov/pubmed/33133682
http://dx.doi.org/10.1016/j.jare.2020.06.019
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