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High-Performance Complementary Electrochromic Device Based on Iridium Oxide as a Counter Electrode

In complementary electrochromic devices (ECDs), nickel oxide (NiO) is generally used as a counter electrode material for enhancing the coloration efficiency. However, an NiO film as a counter electrode in ECDs is susceptible to degradation upon prolonged electrochemical cycling, which leads to an in...

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Autores principales: Ko, Tien-Fu, Chen, Po-Wen, Li, Kuan-Ming, Young, Hong-Tsu, Chang, Chen-Te, Hsu, Sheng-Chuan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8036697/
https://www.ncbi.nlm.nih.gov/pubmed/33805178
http://dx.doi.org/10.3390/ma14071591
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author Ko, Tien-Fu
Chen, Po-Wen
Li, Kuan-Ming
Young, Hong-Tsu
Chang, Chen-Te
Hsu, Sheng-Chuan
author_facet Ko, Tien-Fu
Chen, Po-Wen
Li, Kuan-Ming
Young, Hong-Tsu
Chang, Chen-Te
Hsu, Sheng-Chuan
author_sort Ko, Tien-Fu
collection PubMed
description In complementary electrochromic devices (ECDs), nickel oxide (NiO) is generally used as a counter electrode material for enhancing the coloration efficiency. However, an NiO film as a counter electrode in ECDs is susceptible to degradation upon prolonged electrochemical cycling, which leads to an insufficient device lifetime. In this study, a type of counter electrode iridium oxide (IrO(2)) layer was fabricated using vacuum cathodic arc plasma (CAP). We focused on the comparison of IrO(2) and NiO deposited on a 5 × 5 cm(2) indium tin oxide (ITO) glass substrate with various Ar/O(2) gas-flow ratios (1/2, 1/2.5, and 1/3) in series. The optical performance of IrO(2)-ECD (glass/ITO/WO(3)/liquid electrolyte/IrO(2)/ITO/glass) was determined by optical transmittance modulation; ∆T = 50% (from T(bleaching) (75%) to T(coloring) (25%)) at 633 nm was higher than that of NiO-ECD (ITO/NiO/liquid electrolyte/WO(3)/ITO) (∆T = 32%). Apart from this, the ECD device demonstrated a fast coloring time of 4.8 s, a bleaching time of 1.5 s, and good cycling durability, which remained at 50% transmittance modulation even after 1000 cycles. The fast time was associated with the IrO(2) electrode and provided higher diffusion coefficients and a filamentary shape as an interface that facilitated the transfer of the Li ions into/out of the interface electrodes and the electrolyte. In our result of IrO(2)-ECD analyses, the higher optical transmittance modulation was useful for promoting electrochromic application to a cycle durability test as an alternative to NiO-ECD.
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spelling pubmed-80366972021-04-12 High-Performance Complementary Electrochromic Device Based on Iridium Oxide as a Counter Electrode Ko, Tien-Fu Chen, Po-Wen Li, Kuan-Ming Young, Hong-Tsu Chang, Chen-Te Hsu, Sheng-Chuan Materials (Basel) Article In complementary electrochromic devices (ECDs), nickel oxide (NiO) is generally used as a counter electrode material for enhancing the coloration efficiency. However, an NiO film as a counter electrode in ECDs is susceptible to degradation upon prolonged electrochemical cycling, which leads to an insufficient device lifetime. In this study, a type of counter electrode iridium oxide (IrO(2)) layer was fabricated using vacuum cathodic arc plasma (CAP). We focused on the comparison of IrO(2) and NiO deposited on a 5 × 5 cm(2) indium tin oxide (ITO) glass substrate with various Ar/O(2) gas-flow ratios (1/2, 1/2.5, and 1/3) in series. The optical performance of IrO(2)-ECD (glass/ITO/WO(3)/liquid electrolyte/IrO(2)/ITO/glass) was determined by optical transmittance modulation; ∆T = 50% (from T(bleaching) (75%) to T(coloring) (25%)) at 633 nm was higher than that of NiO-ECD (ITO/NiO/liquid electrolyte/WO(3)/ITO) (∆T = 32%). Apart from this, the ECD device demonstrated a fast coloring time of 4.8 s, a bleaching time of 1.5 s, and good cycling durability, which remained at 50% transmittance modulation even after 1000 cycles. The fast time was associated with the IrO(2) electrode and provided higher diffusion coefficients and a filamentary shape as an interface that facilitated the transfer of the Li ions into/out of the interface electrodes and the electrolyte. In our result of IrO(2)-ECD analyses, the higher optical transmittance modulation was useful for promoting electrochromic application to a cycle durability test as an alternative to NiO-ECD. MDPI 2021-03-24 /pmc/articles/PMC8036697/ /pubmed/33805178 http://dx.doi.org/10.3390/ma14071591 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 (http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) ).
spellingShingle Article
Ko, Tien-Fu
Chen, Po-Wen
Li, Kuan-Ming
Young, Hong-Tsu
Chang, Chen-Te
Hsu, Sheng-Chuan
High-Performance Complementary Electrochromic Device Based on Iridium Oxide as a Counter Electrode
title High-Performance Complementary Electrochromic Device Based on Iridium Oxide as a Counter Electrode
title_full High-Performance Complementary Electrochromic Device Based on Iridium Oxide as a Counter Electrode
title_fullStr High-Performance Complementary Electrochromic Device Based on Iridium Oxide as a Counter Electrode
title_full_unstemmed High-Performance Complementary Electrochromic Device Based on Iridium Oxide as a Counter Electrode
title_short High-Performance Complementary Electrochromic Device Based on Iridium Oxide as a Counter Electrode
title_sort high-performance complementary electrochromic device based on iridium oxide as a counter electrode
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8036697/
https://www.ncbi.nlm.nih.gov/pubmed/33805178
http://dx.doi.org/10.3390/ma14071591
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