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Quasi-Solid-State Electrochromic Cells with Energy Storage Properties Made with Inkjet Printing

In common commercially available electrochromic glass panes, the active materials such as WO(3) and NiO(x) films are typically deposited by either physical vapor or sputtering under vacuum. In the present studies, we report on the inkjet printing method to deposit both electrochromic and ion storage...

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Autores principales: Theodosiou, Krystallia, Giannopoulos, Panagiotis, Georgakopoulos, Tilemachos, Stathatos, Elias
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7412062/
https://www.ncbi.nlm.nih.gov/pubmed/32708217
http://dx.doi.org/10.3390/ma13143241
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author Theodosiou, Krystallia
Giannopoulos, Panagiotis
Georgakopoulos, Tilemachos
Stathatos, Elias
author_facet Theodosiou, Krystallia
Giannopoulos, Panagiotis
Georgakopoulos, Tilemachos
Stathatos, Elias
author_sort Theodosiou, Krystallia
collection PubMed
description In common commercially available electrochromic glass panes, the active materials such as WO(3) and NiO(x) films are typically deposited by either physical vapor or sputtering under vacuum. In the present studies, we report on the inkjet printing method to deposit both electrochromic and ion storage electrode layers under ambient conditions. An ion storage layer based on cerium modified TiO(2) and electrochromic nanocrystalline WO(3) were both prepared under the wet method and deposited as inks on conductive substrates. Both compounds possess porous morphology facilitating high ion diffusion during electrochemical processes. In particular, the ion storage layer was evaluated in terms of porosity, charge capacity and ion diffusion coefficient. A scaled up 90 cm(2) electrochromic device with quasi-solid-state electrolyte was made with the aforementioned materials and evaluated in terms of optical modulation in the visible region, cyclic voltammetry and color efficiency. High contrast between 13.2% and 71.6% for tinted and bleached states measured at 550 nm was monitored under low bias at +2.5 volt and −0.3 volts respectively. Moreover, the calculated energy density equal to 1.95 × 10(−3) mWh cm(−2) and the high areal capacitance of 156.19 mF cm(−2) of the device could combine the electrochromic behavior of the cell with energy storage capability so as to be a promising candidate for future applications into smart buildings.
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spelling pubmed-74120622020-08-25 Quasi-Solid-State Electrochromic Cells with Energy Storage Properties Made with Inkjet Printing Theodosiou, Krystallia Giannopoulos, Panagiotis Georgakopoulos, Tilemachos Stathatos, Elias Materials (Basel) Article In common commercially available electrochromic glass panes, the active materials such as WO(3) and NiO(x) films are typically deposited by either physical vapor or sputtering under vacuum. In the present studies, we report on the inkjet printing method to deposit both electrochromic and ion storage electrode layers under ambient conditions. An ion storage layer based on cerium modified TiO(2) and electrochromic nanocrystalline WO(3) were both prepared under the wet method and deposited as inks on conductive substrates. Both compounds possess porous morphology facilitating high ion diffusion during electrochemical processes. In particular, the ion storage layer was evaluated in terms of porosity, charge capacity and ion diffusion coefficient. A scaled up 90 cm(2) electrochromic device with quasi-solid-state electrolyte was made with the aforementioned materials and evaluated in terms of optical modulation in the visible region, cyclic voltammetry and color efficiency. High contrast between 13.2% and 71.6% for tinted and bleached states measured at 550 nm was monitored under low bias at +2.5 volt and −0.3 volts respectively. Moreover, the calculated energy density equal to 1.95 × 10(−3) mWh cm(−2) and the high areal capacitance of 156.19 mF cm(−2) of the device could combine the electrochromic behavior of the cell with energy storage capability so as to be a promising candidate for future applications into smart buildings. MDPI 2020-07-21 /pmc/articles/PMC7412062/ /pubmed/32708217 http://dx.doi.org/10.3390/ma13143241 Text en © 2020 by the authors. 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/).
spellingShingle Article
Theodosiou, Krystallia
Giannopoulos, Panagiotis
Georgakopoulos, Tilemachos
Stathatos, Elias
Quasi-Solid-State Electrochromic Cells with Energy Storage Properties Made with Inkjet Printing
title Quasi-Solid-State Electrochromic Cells with Energy Storage Properties Made with Inkjet Printing
title_full Quasi-Solid-State Electrochromic Cells with Energy Storage Properties Made with Inkjet Printing
title_fullStr Quasi-Solid-State Electrochromic Cells with Energy Storage Properties Made with Inkjet Printing
title_full_unstemmed Quasi-Solid-State Electrochromic Cells with Energy Storage Properties Made with Inkjet Printing
title_short Quasi-Solid-State Electrochromic Cells with Energy Storage Properties Made with Inkjet Printing
title_sort quasi-solid-state electrochromic cells with energy storage properties made with inkjet printing
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7412062/
https://www.ncbi.nlm.nih.gov/pubmed/32708217
http://dx.doi.org/10.3390/ma13143241
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