Frequency-dependent electrochemical breakdown of hydrogel ionotronics

IF 4.3 3区 工程技术 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Extreme Mechanics Letters Pub Date : 2024-07-22 DOI:10.1016/j.eml.2024.102210
Yuechen Jiang , Yuwei Han , Zeyu Gao , Rong Xu , Kun Jia , Yecheng Wang
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Abstract

When an ionic conductor meets an electronic conductor, ions and electrons couple at the interface between ionic and electronic circuits, enabling a class of devices: ionotronics. Such a coupling gives innovations but can cause electrochemical breakdown. Rapid advances in hydrogel ionotronics, in which hydrogel serves as stretchable, transparent, ionic conductor, highlight an urgent need: a general approach and criterion to study electrochemical breakdown under AC condition. Here we study the breakdown behavior of a metal-hydrogel-metal ionotronic system subject to alternating voltages of various frequencies and amplitudes. First, we apply a sinusoidal voltage to the ionotronic system which is connected in series to a load resistor, and compare the waveforms of the applied voltage and the output voltage between the two ends of the load resistor at various frequencies and amplitudes. Electrochemical breakdown tends to take place at low frequencies and high amplitudes, and causes distortion of waveform of the output voltage. Next, we develop an electric circuit model, in which each hydrogel-metal junction is modeled as a constant phase element in parallel with a leakage resistor and the hydrogel is modeled as a resistor. Our experiments show that the electrochemical window is insensitive to the frequency and amplitude of applied voltage, as well as to the concentration of ions in the hydrogel. Through a combination of experiment and theory, we further propose a frequency-amplitude phase diagram. Different from DC condition, the breakdown behavior under AC condition depends not only on the amplitude of applied voltage, but also on the frequency of applied voltage. We also show that electrochemical reaction can be retarded by stretching the hydrogel and by increasing the frequency. It is hoped that this work will guide the development of stable and reliable hydrogel ionotronic devices.

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水凝胶离子电子学的频率依赖性电化学分解
当离子导体遇到电子导体时,离子和电子就会在离子电路和电子电路的界面上耦合,从而产生一类设备:离子电子学。这种耦合带来了创新,但也可能导致电化学击穿。水凝胶离子电子学(水凝胶在其中充当可拉伸、透明的离子导体)的快速发展凸显了一个迫切的需求:研究交流条件下电化学击穿的一般方法和标准。在此,我们研究了金属-水凝胶-金属离子电子系统在不同频率和振幅的交流电压下的击穿行为。首先,我们给串联在负载电阻器上的离子电子系统施加正弦电压,然后比较不同频率和振幅下的施加电压波形和负载电阻器两端的输出电压波形。电化学击穿往往发生在低频和高振幅时,并导致输出电压波形失真。接下来,我们建立了一个电路模型,其中每个水凝胶-金属交界处都被建模为一个与漏电阻并联的恒定相位元件,而水凝胶则被建模为一个电阻。我们的实验表明,电化学窗口对施加电压的频率和振幅以及水凝胶中的离子浓度不敏感。通过实验和理论的结合,我们进一步提出了频率-振幅相图。与直流条件不同,交流条件下的击穿行为不仅取决于外加电压的振幅,还取决于外加电压的频率。我们还表明,拉伸水凝胶和提高频率可以延缓电化学反应。希望这项研究能为开发稳定可靠的水凝胶离子电子器件提供指导。
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来源期刊
Extreme Mechanics Letters
Extreme Mechanics Letters Engineering-Mechanics of Materials
CiteScore
9.20
自引率
4.30%
发文量
179
审稿时长
45 days
期刊介绍: Extreme Mechanics Letters (EML) enables rapid communication of research that highlights the role of mechanics in multi-disciplinary areas across materials science, physics, chemistry, biology, medicine and engineering. Emphasis is on the impact, depth and originality of new concepts, methods and observations at the forefront of applied sciences.
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