TY - JOUR
T1 - Unprecedented Electrochromic Stability of a-WO3- xThin Films Achieved by Using a Hybrid-Cationic Electrolyte
AU - Guo, Junji
AU - Guo, Xing
AU - Sun, Huibin
AU - Xie, Yizhu
AU - Diao, Xungang
AU - Wang, Mei
AU - Zeng, Xiping
AU - Zhang, Zhi Bin
N1 - Publisher Copyright:
© 2021 American Chemical Society.
PY - 2021/3/10
Y1 - 2021/3/10
N2 - With large interstitial space volumes and fast ion diffusion pathways, amorphous metal oxides as cathodic intercalation materials for electrochromic devices have attracted attention. However, these incompact thin films normally suffer from two inevitable imperfections: self-deintercalation of guest ions and poor stability of the structure, which constitute a big obstacle toward the development of high-stable commercial applications. Here, we present a low-cost, eco-friendly hybrid cation 1,2-PG-AlCl3·6H2O electrolyte, in which the sputter-deposited a-WO3-x thin film can exhibit both the long-desired excellent open-circuit memory (>100 h, with zero optical loss) and super-long cycling lifetime (∼20,000 cycles, with 80% optical modulation), benefiting from the formation of unique Al-hydroxide-based solid electrolyte interphase during electrochromic operations. In addition, the optical absorption behaviors in a-WO3-x caused by host-guest interactions were elaborated. We demonstrated that the intervalence transfers are primarily via the "corner-sharing"related path (W5+ Δ W6+) but not the "edge-sharing"related paths (W4+ Δ W6+ and/or W4+ Δ W5+), and the small polaron/electron transfers taking place at the W-O bond-breaking positions are not allowed. Our findings might provide in-depth insights into the nature of electrochromism and provide a significant step in the realization of more stable, more excellent electrochromic applications based on amorphous metal oxides.
AB - With large interstitial space volumes and fast ion diffusion pathways, amorphous metal oxides as cathodic intercalation materials for electrochromic devices have attracted attention. However, these incompact thin films normally suffer from two inevitable imperfections: self-deintercalation of guest ions and poor stability of the structure, which constitute a big obstacle toward the development of high-stable commercial applications. Here, we present a low-cost, eco-friendly hybrid cation 1,2-PG-AlCl3·6H2O electrolyte, in which the sputter-deposited a-WO3-x thin film can exhibit both the long-desired excellent open-circuit memory (>100 h, with zero optical loss) and super-long cycling lifetime (∼20,000 cycles, with 80% optical modulation), benefiting from the formation of unique Al-hydroxide-based solid electrolyte interphase during electrochromic operations. In addition, the optical absorption behaviors in a-WO3-x caused by host-guest interactions were elaborated. We demonstrated that the intervalence transfers are primarily via the "corner-sharing"related path (W5+ Δ W6+) but not the "edge-sharing"related paths (W4+ Δ W6+ and/or W4+ Δ W5+), and the small polaron/electron transfers taking place at the W-O bond-breaking positions are not allowed. Our findings might provide in-depth insights into the nature of electrochromism and provide a significant step in the realization of more stable, more excellent electrochromic applications based on amorphous metal oxides.
KW - 1,2-PG-AlCl·6HO electrolyte
KW - a-WOthin film
KW - cyclic stability
KW - open-circuit memory
KW - optical absorption
UR - https://www.scopus.com/pages/publications/85102965133
U2 - 10.1021/acsami.0c22921
DO - 10.1021/acsami.0c22921
M3 - 文章
C2 - 33645966
AN - SCOPUS:85102965133
SN - 1944-8244
VL - 13
SP - 11067
EP - 11077
JO - ACS Applied Materials and Interfaces
JF - ACS Applied Materials and Interfaces
IS - 9
ER -