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Lithium trapping as a degradation mechanism of the electrochromic properties of all-solid-state WO3//NiO devices

Authors :
Aline Rougier
Antoine Barnabé
Xungang Diao
Fan Zhang
Dongmei Dong
Guobo Dong
Wenwen Wang
Beihang University (BUAA)
Institut de Chimie de la Matière Condensée de Bordeaux (ICMCB)
Université de Bordeaux (UB)-Institut Polytechnique de Bordeaux-Institut de Chimie du CNRS (INC)-Centre National de la Recherche Scientifique (CNRS)
Centre interuniversitaire de recherche et d'ingenierie des matériaux (CIRIMAT)
Centre National de la Recherche Scientifique (CNRS)-Université Toulouse III - Paul Sabatier (UT3)
Université Fédérale Toulouse Midi-Pyrénées-Université Fédérale Toulouse Midi-Pyrénées-Institut National Polytechnique (Toulouse) (Toulouse INP)
Université Fédérale Toulouse Midi-Pyrénées-Institut de Chimie du CNRS (INC)
This work was financially supported by the National Program on Key Research Project (2016YFB0303900) and the Academic Excellence Foundation of BUAA for PhD Students (2017062).
Centre National de la Recherche Scientifique - CNRS (FRANCE)
Institut National Polytechnique de Toulouse - INPT (FRANCE)
Institut Polytechnique de Bordeaux - IPB (FRANCE)
Université Toulouse III - Paul Sabatier - UT3 (FRANCE)
Beihang University (CHINA)
Université Bordeaux Montaigne (FRANCE)
Institut de Chimie de la matière condensée de Bordeaux - ICMCB (Bordeaux, France)
Institut National Polytechnique de Toulouse - Toulouse INP (FRANCE)
Source :
Journal of Materials Chemistry C, Journal of Materials Chemistry C, Royal Society of Chemistry, 2018, 6 (37), pp.9875-9889. ⟨10.1039/c8tc01372a⟩
Publication Year :
2018
Publisher :
HAL CCSD, 2018.

Abstract

International audience; There has been keen interest for years in the research of all-solid-state transmittance-type electrochromic (EC) devices due to their various applications especially in ‘‘smart windows’’. A step forward has been taken in the successful preparation of full multilayered devices with enlarged optical contrast and fast switching response. However, limited durability remains a severe issue. Upon cycling, EC devices suffer from decline of charge capacity as well as optical modulation while the detailed degradation mechanisms remain poorly understood. Here, we demonstrate unambiguous ion-trapping evidence to interpret the charge density decay of the EC device induced using various voltammetric cycling protocols, namely long-term cycling and accelerated cycling. Pronounced comparable ion trapping occurs in cathodically colored WO3 films whatever the cycling procedure is, suggesting the existence of the trapping ‘‘saturation’’ phenomenon. From second-ion-mass-spectroscopy analysis, the 7Li+/184W+ ratio in the degraded WO3 films is more than 100 while it is almost zero in the as-prepared films. In contrast, for anodically colored NiO, a larger number of trapped cations is determined in the long-term cycled films than in the accelerated ones. In combination with X-ray-photoelectron-spectroscopy, variable bonding energies indicate that the ions are trapped at different types of sites, depending on the cycling procedure, and they can reside in the structural channels or break the network chains to form new chemical bondings, thus resulting in a significant color difference. In addition, a clear upward trend in the trapped Li concentration along with depth is observed. All our findings provide a deep insight into the degradation phenomenon taking place in electrochromic films as well as in full devices and offer valuable information for the understanding of micro mechanisms.

Details

Language :
English
ISSN :
20507526 and 20507534
Database :
OpenAIRE
Journal :
Journal of Materials Chemistry C, Journal of Materials Chemistry C, Royal Society of Chemistry, 2018, 6 (37), pp.9875-9889. ⟨10.1039/c8tc01372a⟩
Accession number :
edsair.doi.dedup.....7f1f79e3210fc3d54922b79f059f3115