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用于电致变色薄膜同时进行电化学和颜色阻抗测量的设置:理论、评估和测试测量。

Setup for simultaneous electrochemical and color impedance measurements of electrochromic films: Theory, assessment, and test measurement.

作者信息

Rojas-González Edgar A, Niklasson Gunnar A

机构信息

Department of Engineering Sciences, The Ångström Laboratory, Uppsala University, P.O. Box 534, SE-751 21 Uppsala, Sweden.

出版信息

Rev Sci Instrum. 2019 Aug;90(8):085103. doi: 10.1063/1.5115119.

Abstract

Combined frequency-resolved techniques are suitable to study electrochromic (EC) materials. We present an experimental setup for simultaneous electrochemical and color impedance studies of EC systems in transmission mode and estimate its frequency-dependent uncertainty by measuring the background noise. We define the frequency-dependent variables that are relevant to the combined measurement scheme, and a special emphasis is given to the complex optical capacitance and the complex differential coloration efficiency, which provide the relation between the electrical and optical responses. Results of a test measurement on amorphous WO with LED light sources of peak wavelengths of 470, 530, and 810 nm are shown and discussed. In this case, the amplitude of the complex differential coloration efficiency presented a monotonous increase down to about 0.3 Hz and was close to a constant value for lower frequencies. We study the effect of the excitation voltage amplitude on the linearity of the electrical and optical responses for the case of amorphous WO at 2.6 V vs Li/Li, where a trade-off should be made between the signal-to-noise ratio (SNR) of the optical signal and the linearity of the system. For the studied case, it was possible to increase the upper accessible frequency of the combined techniques (defined in this work as the upper threshold of the frequency region for which the SNR of the optical signal is greater than 5) from 11.2 Hz to 125.9 Hz while remaining in the linear regime with a tolerance of less than 5%.

摘要

组合频率分辨技术适用于研究电致变色(EC)材料。我们展示了一种用于在透射模式下对EC系统进行同步电化学和颜色阻抗研究的实验装置,并通过测量背景噪声来估计其频率相关的不确定性。我们定义了与组合测量方案相关的频率相关变量,并特别强调了复光学电容和复微分着色效率,它们提供了电响应和光响应之间的关系。展示并讨论了使用峰值波长为470、530和810 nm的LED光源对非晶WO进行测试测量的结果。在这种情况下,复微分着色效率的幅度在约0.3 Hz以下呈现单调增加,而在较低频率下接近恒定值。我们研究了在相对于Li/Li为2.6 V的非晶WO情况下,激励电压幅度对电响应和光响应线性度的影响;在这种情况下,需要在光信号的信噪比(SNR)和系统的线性度之间进行权衡。对于所研究的情况,有可能将组合技术的可及上限频率(在本工作中定义为光信号SNR大于5的频率区域的上限阈值)从11.2 Hz提高到125.9 Hz,同时保持在线性范围内,容差小于5%。

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