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Galvanostatic Rejuvenation of Electrochromic WO3 Thin Films: Ion Trapping and Detrapping Observed by Optical Measurements and by Time-of-Flight Secondary Ion Mass Spectrometry.
Baloukas, Bill; Arvizu, Miguel A; Wen, Rui-Tao; Niklasson, Gunnar A; Granqvist, Claes G; Vernhes, Richard; Klemberg-Sapieha, Jolanta E; Martinu, Ludvik.
Afiliação
  • Baloukas B; Department of Engineering Physics, Polytechnique Montréal , Montreal, Quebec H3C 3A7, Canada.
  • Arvizu MA; Department of Engineering Sciences, The Ångström Laboratory, Uppsala University , SE-75121 Uppsala, Sweden.
  • Wen RT; Department of Engineering Sciences, The Ångström Laboratory, Uppsala University , SE-75121 Uppsala, Sweden.
  • Niklasson GA; Department of Engineering Sciences, The Ångström Laboratory, Uppsala University , SE-75121 Uppsala, Sweden.
  • Granqvist CG; Department of Engineering Sciences, The Ångström Laboratory, Uppsala University , SE-75121 Uppsala, Sweden.
  • Vernhes R; Department of Engineering Physics, Polytechnique Montréal , Montreal, Quebec H3C 3A7, Canada.
  • Klemberg-Sapieha JE; Department of Engineering Physics, Polytechnique Montréal , Montreal, Quebec H3C 3A7, Canada.
  • Martinu L; Department of Engineering Physics, Polytechnique Montréal , Montreal, Quebec H3C 3A7, Canada.
ACS Appl Mater Interfaces ; 9(20): 16995-17001, 2017 May 24.
Article em En | MEDLINE | ID: mdl-28485953
ABSTRACT
Electrochromic (EC) smart windows are able to decrease our energy footprint while enhancing indoor comfort and convenience. However, the limited durability of these windows, as well as their cost, result in hampered market introduction. Here, we investigate thin films of the most widely studied EC material, WO3. Specifically, we combine optical measurements (using spectrophotometry in conjunction with variable-angle spectroscopic ellipsometry) with time-of-flight secondary ion mass spectrometry and atomic force microscopy. Data were taken on films in their as-deposited state, after immersion in a Li-ion-conducting electrolyte, after severe degradation by harsh voltammetric cycling and after galvanostatic rejuvenation to regain the original EC performance. Unambiguous evidence was found for the trapping and detrapping of Li ions in the films, along with a thickness increase or decrease during degradation and rejuvenation, respectively. It was discovered that (i) the trapped ions exhibited a depth gradient; (ii) following the rejuvenation procedure, a small fraction of the Li ions remained trapped in the film and gave rise to a weak short-wavelength residual absorption; and (iii) the surface roughness of the film was larger in the degraded state than in its virgin and rejuvenated states. These data provide important insights into the degradation mechanisms of EC devices and into means of achieving improved durability.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2017 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2017 Tipo de documento: Article