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通过使用混合阳离子电解质实现的α-WO薄膜前所未有的电致变色稳定性。

Unprecedented Electrochromic Stability of a-WO Thin Films Achieved by Using a Hybrid-Cationic Electrolyte.

作者信息

Guo Junji, Guo Xing, Sun Huibin, Xie Yizhu, Diao Xungang, Wang Mei, Zeng Xiping, Zhang Zhi-Bin

机构信息

College of Physics and Optoelectronic Engineering, Shenzhen University, Shenzhen 518060, China.

Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China.

出版信息

ACS Appl Mater Interfaces. 2021 Mar 10;13(9):11067-11077. doi: 10.1021/acsami.0c22921. Epub 2021 Mar 1.

Abstract

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-AlCl·6HO electrolyte, in which the sputter-deposited a-WO 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-WO caused by host-guest interactions were elaborated. We demonstrated that the intervalence transfers are primarily via the "corner-sharing" related path (W ↔ W) but not the "edge-sharing" related paths (W ↔ W and/or W ↔ W), 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.

摘要

由于具有较大的间隙空间体积和快速的离子扩散途径,非晶态金属氧化物作为电致变色器件的阴极插层材料受到了关注。然而,这些疏松的薄膜通常存在两个不可避免的缺陷:客体离子的自脱嵌和结构稳定性差,这对高稳定性商业应用的发展构成了巨大障碍。在此,我们提出了一种低成本、环保的混合阳离子1,2-PG-AlCl·6HO电解质,其中溅射沉积的a-WO薄膜既可以表现出长期以来所期望的优异开路记忆(>100小时,无光损失),又具有超长的循环寿命(约20,000次循环,光调制率为80%),这得益于在电致变色操作过程中形成了独特的基于氢氧化铝的固体电解质界面。此外,还阐述了主客体相互作用引起的a-WO中的光吸收行为。我们证明,价间转移主要通过“角共享”相关路径(W↔W),而不是“边共享”相关路径(W↔W和/或W↔W),并且不允许在W-O键断裂位置发生小极化子/电子转移。我们的发现可能为深入了解电致变色的本质提供见解,并为基于非晶态金属氧化物实现更稳定、更优异的电致变色应用迈出重要一步。

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