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Systematic Analysis on the Effect of Sintering Temperature for Optimized Performance of Li(0.15)Ni(0.45)Zn(0.4)O(2)-Gd(0.2)Ce(0.8)O(2)-Li(2)CO(3)-Na(2)CO(3)-K(2)CO(3) Based 3D Printed Single-Layer Ceramic Fuel Cell

Single-layer ceramic fuel cells consisting of Li(0.15)Ni(0.45)Zn(0.4)O(2), Gd(0.2)Ce(0.8)O(2) and a eutectic mixture of Li(2)CO(3), Na(2)CO(3) and K(2)CO(3), were fabricated through extrusion-based 3D printing. The sintering temperature of the printed cells was varied from 700 °C to 1000 °C to ident...

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Autores principales: Asghar, Muhammad Imran, Mäkinen, Pyry, Virtanen, Sini, Maitre, Anna, Borghei, Maryam, Lund, Peter D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8466634/
https://www.ncbi.nlm.nih.gov/pubmed/34578496
http://dx.doi.org/10.3390/nano11092180
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author Asghar, Muhammad Imran
Mäkinen, Pyry
Virtanen, Sini
Maitre, Anna
Borghei, Maryam
Lund, Peter D.
author_facet Asghar, Muhammad Imran
Mäkinen, Pyry
Virtanen, Sini
Maitre, Anna
Borghei, Maryam
Lund, Peter D.
author_sort Asghar, Muhammad Imran
collection PubMed
description Single-layer ceramic fuel cells consisting of Li(0.15)Ni(0.45)Zn(0.4)O(2), Gd(0.2)Ce(0.8)O(2) and a eutectic mixture of Li(2)CO(3), Na(2)CO(3) and K(2)CO(3), were fabricated through extrusion-based 3D printing. The sintering temperature of the printed cells was varied from 700 °C to 1000 °C to identify the optimal thermal treatment to maximize the cell performance. It was found that the 3D printed single-layer cell sintered at 900 °C produced the highest power density (230 mW/cm(2)) at 550 °C, which is quite close to the performance (240 mW/cm(2)) of the single-layer cell fabricated through a conventional pressing method. The best printed cell still had high ohmic (0.46 Ω·cm(2)) and polarization losses (0.32 Ω·cm(2)) based on EIS measurements conducted in an open-circuit condition. The XRD spectra showed the characteristic peaks of the crystalline structures in the composite material. HR-TEM, SEM and EDS measurements revealed the morphological information of the composite materials and the distribution of the elements, respectively. The BET surface area of the single-layer cells was found to decrease from 2.93 m(2)/g to 0.18 m(2)/g as the sintering temperature increased from 700 °C to 1000 °C. The printed cell sintered at 900 °C had a BET surface area of 0.34 m(2)/g. The fabrication of single-layer ceramic cells through up-scalable 3D technology could facilitate the scaling up and commercialization of this promising fuel cell technology.
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spelling pubmed-84666342021-09-27 Systematic Analysis on the Effect of Sintering Temperature for Optimized Performance of Li(0.15)Ni(0.45)Zn(0.4)O(2)-Gd(0.2)Ce(0.8)O(2)-Li(2)CO(3)-Na(2)CO(3)-K(2)CO(3) Based 3D Printed Single-Layer Ceramic Fuel Cell Asghar, Muhammad Imran Mäkinen, Pyry Virtanen, Sini Maitre, Anna Borghei, Maryam Lund, Peter D. Nanomaterials (Basel) Article Single-layer ceramic fuel cells consisting of Li(0.15)Ni(0.45)Zn(0.4)O(2), Gd(0.2)Ce(0.8)O(2) and a eutectic mixture of Li(2)CO(3), Na(2)CO(3) and K(2)CO(3), were fabricated through extrusion-based 3D printing. The sintering temperature of the printed cells was varied from 700 °C to 1000 °C to identify the optimal thermal treatment to maximize the cell performance. It was found that the 3D printed single-layer cell sintered at 900 °C produced the highest power density (230 mW/cm(2)) at 550 °C, which is quite close to the performance (240 mW/cm(2)) of the single-layer cell fabricated through a conventional pressing method. The best printed cell still had high ohmic (0.46 Ω·cm(2)) and polarization losses (0.32 Ω·cm(2)) based on EIS measurements conducted in an open-circuit condition. The XRD spectra showed the characteristic peaks of the crystalline structures in the composite material. HR-TEM, SEM and EDS measurements revealed the morphological information of the composite materials and the distribution of the elements, respectively. The BET surface area of the single-layer cells was found to decrease from 2.93 m(2)/g to 0.18 m(2)/g as the sintering temperature increased from 700 °C to 1000 °C. The printed cell sintered at 900 °C had a BET surface area of 0.34 m(2)/g. The fabrication of single-layer ceramic cells through up-scalable 3D technology could facilitate the scaling up and commercialization of this promising fuel cell technology. MDPI 2021-08-25 /pmc/articles/PMC8466634/ /pubmed/34578496 http://dx.doi.org/10.3390/nano11092180 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Asghar, Muhammad Imran
Mäkinen, Pyry
Virtanen, Sini
Maitre, Anna
Borghei, Maryam
Lund, Peter D.
Systematic Analysis on the Effect of Sintering Temperature for Optimized Performance of Li(0.15)Ni(0.45)Zn(0.4)O(2)-Gd(0.2)Ce(0.8)O(2)-Li(2)CO(3)-Na(2)CO(3)-K(2)CO(3) Based 3D Printed Single-Layer Ceramic Fuel Cell
title Systematic Analysis on the Effect of Sintering Temperature for Optimized Performance of Li(0.15)Ni(0.45)Zn(0.4)O(2)-Gd(0.2)Ce(0.8)O(2)-Li(2)CO(3)-Na(2)CO(3)-K(2)CO(3) Based 3D Printed Single-Layer Ceramic Fuel Cell
title_full Systematic Analysis on the Effect of Sintering Temperature for Optimized Performance of Li(0.15)Ni(0.45)Zn(0.4)O(2)-Gd(0.2)Ce(0.8)O(2)-Li(2)CO(3)-Na(2)CO(3)-K(2)CO(3) Based 3D Printed Single-Layer Ceramic Fuel Cell
title_fullStr Systematic Analysis on the Effect of Sintering Temperature for Optimized Performance of Li(0.15)Ni(0.45)Zn(0.4)O(2)-Gd(0.2)Ce(0.8)O(2)-Li(2)CO(3)-Na(2)CO(3)-K(2)CO(3) Based 3D Printed Single-Layer Ceramic Fuel Cell
title_full_unstemmed Systematic Analysis on the Effect of Sintering Temperature for Optimized Performance of Li(0.15)Ni(0.45)Zn(0.4)O(2)-Gd(0.2)Ce(0.8)O(2)-Li(2)CO(3)-Na(2)CO(3)-K(2)CO(3) Based 3D Printed Single-Layer Ceramic Fuel Cell
title_short Systematic Analysis on the Effect of Sintering Temperature for Optimized Performance of Li(0.15)Ni(0.45)Zn(0.4)O(2)-Gd(0.2)Ce(0.8)O(2)-Li(2)CO(3)-Na(2)CO(3)-K(2)CO(3) Based 3D Printed Single-Layer Ceramic Fuel Cell
title_sort systematic analysis on the effect of sintering temperature for optimized performance of li(0.15)ni(0.45)zn(0.4)o(2)-gd(0.2)ce(0.8)o(2)-li(2)co(3)-na(2)co(3)-k(2)co(3) based 3d printed single-layer ceramic fuel cell
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8466634/
https://www.ncbi.nlm.nih.gov/pubmed/34578496
http://dx.doi.org/10.3390/nano11092180
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