基于苄基紫胶的交流驱动电致变色器件:交流频率指示器

IF 2.3 3区 化学 Q2 CHEMISTRY, ANALYTICAL
Electroanalysis Pub Date : 2025-10-07 DOI:10.1002/elan.70063
Weiyi Chen, Meng Wang, Shijie Xu, Lu Li, Xiaodi Liu, Debao Xiao
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引用次数: 0

摘要

电致变色器件(ECDs)由于其在各个领域的应用前景广阔,在世界范围内得到了广泛的研究。据我们所知,所有先前报道的ECDs都是由直流电驱动的,这是电致变色研究的传统方法。在本文中,我们提出了由交流(AC)驱动的ECD应该被证明。以1,1 ' -二苯基-4,4 ' -二氯化二吡啶作为电致变色发色团,将ECDs夹在一体模式中。研究了交流驱动的ECDs的电致变色性能作为交流频率在0.1 ~ 1000 Hz范围内的函数。研究发现,以二苄基紫胶为基料的电致变色材料在交流驱动下可以工作,但与直流驱动有一定的差异。光学对比度与0.1至1000 Hz范围内交流频率的对数值成正比,这表明交流驱动的ECD可能潜在地用作交流频率的视觉指示器。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Alternating Current-Driven Electrochromic Devices Based on Benzyl Viologen: AC Frequency Indicator

Alternating Current-Driven Electrochromic Devices Based on Benzyl Viologen: AC Frequency Indicator

Electrochromic devices (ECDs) have been extensively studied worldwide due to their promising applications in various fields. To the best of our knowledge, all previously reported ECDs are exclusively driven by direct current (DC), which has been the conventional approach in electrochromic research. In this article, we propose that the ECD driven by alternating current (AC) should be testified. The ECDs were sandwiched in all-in-one mode using 1,1′-dibenzyl-4,4′-dipyridine dichloride as electrochromic chromophore. The electrochromic performance of the as-AC-driven ECDs was examined as a function of AC frequency from 0.1 to 1000 Hz. It is found that electrochromic based on dibenzyl viologen can work driven by AC, but with some differences from that by DC. The optical contrast is directly proportional to the logarithm value of AC frequency in the range from 0.1 to 1000 Hz, which suggests that the AC-driven ECD may potentially be useful as a visual indicator for AC frequency.

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来源期刊
Electroanalysis
Electroanalysis 化学-电化学
CiteScore
6.00
自引率
3.30%
发文量
222
审稿时长
2.4 months
期刊介绍: Electroanalysis is an international, peer-reviewed journal covering all branches of electroanalytical chemistry, including both fundamental and application papers as well as reviews dealing with new electrochemical sensors and biosensors, nanobioelectronics devices, analytical voltammetry, potentiometry, new electrochemical detection schemes based on novel nanomaterials, fuel cells and biofuel cells, and important practical applications. Serving as a vital communication link between the research labs and the field, Electroanalysis helps you to quickly adapt the latest innovations into practical clinical, environmental, food analysis, industrial and energy-related applications. Electroanalysis provides the most comprehensive coverage of the field and is the number one source for information on electroanalytical chemistry, electrochemical sensors and biosensors and fuel/biofuel cells.
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