Rapid response and wide-band regulation of an electrochromic device achieved by ultra-small V2O5 nanodots and a Zn2+/Li+ electrolyte

IF 6.1 1区 化学 Q1 CHEMISTRY, INORGANIC & NUCLEAR
Ling Wang, Bin Wang, Haizeng Li, Lixin Qiao
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Abstract

The distinctive multicolor characteristics of vanadium oxide (V2O5) set it apart from other inorganic electrochromic materials. Nevertheless, its practical applications are considerably constrained by several factors, including solubility in aqueous electrolytes, inferior conductivity, and especially limited light modulation. In this study, we introduce an innovative approach for the preparation of ultra-small V2O5 nanodots, which are expected to offer an increased number of active sites, thereby improving the efficiency of redox reactions. A comparative analysis of the performance of the V2O5 electrode in different cation electrolytes shows that Li+ serves as the most suitable match due to its small ionic radius and monovalent nature. As a result, the V2O5 electrochromic electrode demonstrates exceptional electrochromic performance, characterized by its ability to undergo wide-band adjustments attributable to the polarization reactions associated with cation insertion. As a proof of concept, we utilized V2O5 nanodots and a Zn2+/Li+ electrolyte to develop a multicolor transparent electrochromic display using zinc as the anode. Given the enhanced performance of the Zn2+/Li+ electrolyte and the V2O5 nanodot cathode, the prototype of the electrochromic display exhibits impressive performance, such as optical contrasts of 61.2% (728 nm) and 50.2% (1200 nm), a bleaching time of 8.5 s, a coloring time of 10.4 s, and an energy recovery efficiency of 31.65%. This work provides a significant material foundation for advancing vanadate-based electrochromic display technology and offers valuable insights into the selection of electrolytes for vanadate devices.

Abstract Image

超小型V2O5纳米点和Zn2+/Li+电解质实现电致变色器件的快速响应和宽带调节
钒氧化物(V2O5)独特的多色特性使其有别于其他无机电致变色材料。然而,它的实际应用很大程度上受到几个因素的限制,包括在水溶液中的溶解度,较差的导电性,特别是有限的光调制。在这项研究中,我们介绍了一种制备超小型V2O5纳米点的创新方法,该方法有望提供更多的活性位点,从而提高氧化还原反应的效率。对比分析了V2O5电极在不同阳离子电解质中的性能,表明Li+离子半径小,具有一价性,是最合适的匹配。结果表明,V2O5电致变色电极表现出优异的电致变色性能,其特点是由于与阳离子插入相关的极化反应能够进行宽带调节。作为概念验证,我们利用V2O5纳米点和Zn2+/Li+电解质开发了一种以锌为阳极的多色透明电致变色显示器。考虑到Zn2+/Li+电解质和V2O5纳米点阴极的增强性能,电致变色显示器的原型具有令人印象良好的性能,光学对比度为61.2% (728 nm)和50.2% (1200 nm),漂白时间为8.5 s,着色时间为10.4 s,能量回收效率为31.65%。这项工作为推进钒酸盐基电致变色显示技术提供了重要的物质基础,并为钒酸盐器件的电解质选择提供了有价值的见解。
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来源期刊
Inorganic Chemistry Frontiers
Inorganic Chemistry Frontiers CHEMISTRY, INORGANIC & NUCLEAR-
CiteScore
10.40
自引率
7.10%
发文量
587
审稿时长
1.2 months
期刊介绍: The international, high quality journal for interdisciplinary research between inorganic chemistry and related subjects
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