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Electrochemical impedance spectroscopy of metal fiber/activated carbon-fiber composite materials for electrochemical capacitors.

机译:用于电化学电容器的金属纤维/活性碳纤维复合材料的电化学阻抗谱。

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Composite materials of metal fibers and carbon fibers are capable of combining properties of high conductivity and high surface area in a manner previously unattainable by standard packed powder bed technology. This combination of properties is attractive for the possibility of producing electrochemical capacitors (ELCC) with high conductivity. Low conductivity in an ELCC is detrimental in applications such as power filtering due to resistive heat generation during cycling.; The frequency response of metal fiber/activated carbon fiber composite electrodes was studied to elucidate the mechanisms responsible for the impedance of composite electrodes. After much model discrimination, an equivalent circuit representing the composite metal fiber/activated carbon electrodes was determined which represents the impedance over the entire frequency range studied, 5 mhertz to 10{dollar}sp5{dollar} hertz.; The cost of activated carbon fibers (ACF), ca. {dollar}100/lb., is a limiting factor in the economization of ELCC, so less expensive materials were tested for use in ELCC electrodes. Wood pulps were tested for utilization of the surface area of residual carbon from the sintering process as double layer capacitor material.; Different ACFs have varying properties and some may be more suitable for ELCC application. Four different ACF were tested for use in ELCC electrodes, and the parameters in the equivalent circuit model for the composite metal fiber/activated carbon fiber electrodes were compared with time of sintering. Some carbon-metal contacts are lost during the sintering process, and can be regained by electrodeposition of nickel metal. The variations of the model circuit parameters with electrodeposition for the four ACFs is also presented.; The fundamental design parameter for composite metal fiber/activated carbon fiber electrodes is the metal loading. Length of metal fiber in the mesh is actually of most importance, so experiments were performed with equivalent loadings of different diameter metal fibers. Also, a program to simulate a random distribution of metal and activated carbon fibers in non-overlapping layers was written. The effect of different access lengths, of the activated carbon fibers for the metal-carbon fiber contacts, on the utilization of the activated carbon fibers was included in the simulation.
机译:金属纤维和碳纤维的复合材料能够以以前通过标准填充粉末床技术无法获得的方式结合高导电性和高表面积的特性。这些特性的组合对于生产具有高电导率的电化学电容器(ELCC)的可能性具有吸引力。 ELCC中的低电导率由于循环过程中产生的电阻热而在诸如功率过滤之类的应用中是有害的。研究了金属纤维/活性碳纤维复合电极的频率响应,以阐明造成复合电极阻抗的机制。经过大量模型判别,确定了代表复合金属纤维/活性炭电极的等效电路,该电路代表了所研究的整个频率范围(5赫兹至10 {sp} {sp5 {dollar}赫兹)的阻抗。活性炭纤维(ACF)的成本,约100美元/磅是限制ELCC经济性的限制因素,因此测试了较便宜的材料用于ELCC电极。测试了木浆以利用来自烧结过程的残留碳的表面积作为双层电容器材料。不同的ACF具有不同的属性,有些可能更适合ELCC应用。测试了四种不同的ACF用于ELCC电极,并且将复合金属纤维/活性碳纤维电极的等效电路模型中的参数与烧结时间进行了比较。一些碳金属接触在烧结过程中会丢失,并且可以通过镍金属的电沉积重新获得。还介绍了四个ACF的模型电路参数随电沉积的变化。复合金属纤维/活性碳纤维电极的基本设计参数是金属负载。网格中金属纤维的长度实际上是最重要的,因此要在不同直径金属纤维的等效载荷下进行实验。另外,编写了一个程序来模拟金属和活性碳纤维在非重叠层中的随机分布。模拟中包括了金属碳纤维接触点的活性炭纤维的不同接触长度对活性炭纤维利用率的影响。

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