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首页> 外文期刊>Electrochimica Acta >Characterization and application of electrodeposited Pt, Pt/Pd, and Pd catalyst structures for direct formic acid micro fuel cells
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Characterization and application of electrodeposited Pt, Pt/Pd, and Pd catalyst structures for direct formic acid micro fuel cells

机译:直接甲酸微燃料电池电沉积Pt,Pt / Pd和Pd催化剂结构的表征和应用

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摘要

In this work, we study the preparation, structural characterization, and electrocatalytic analysis of robust Pt and Pd-containing catalyst structures for silicon-based formic acid micro fuel cells. The catalyst structures studied were prepared and incorporated into the silicon fuel cells by a post CMOS-compatible process of electrodeposition, as opposed to the more common introduction of nanoparticle-based catalyst by ink painting. Robust, high surface area, catalyst structures consisting of pure Pt, pure Pd, and Pt/Pd = 1:1 were obtained. In addition, Pt/Pd catalyst structures were obtained via spontaneous deposition on the electrodeposited pure Pt structure. The catalyst structures were characterized electrochemically using cyclic voltammetry and chronoamperometry. All Pd-containing catalyst structures facilitate formic acid oxidation at the lower potentials and deliver higher oxidation currents compared to pure Pt catalyst structures. Fuel cells of these catalyst structures show that pure Pd catalyst structures on the anode exhibit the highest peak power density, i.e. as high as 28.0 mW/cm{sup}2. The MEMS compatible way of catalyst electrodeposition and integration presented here has yielded catalyst structures that are highly active towards formic acid oxidation and are sufficiently robust to be compatible with post-CMOS processing.
机译:在这项工作中,我们研究了用于硅基甲酸微燃料电池的稳健的Pt和含Pd催化剂结构的制备,结构表征和电催化分析。制备了研究的催化剂结构,并通过后CMOS兼容的电沉积工艺将其掺入到硅燃料电池中,这与通过油墨涂漆引入纳米粒子基催化剂的方法更为常见。获得了坚固,高表面积,由纯Pt,纯Pd和Pt / Pd = 1:1组成的催化剂结构。另外,通过在电沉积的纯Pt结构上自发沉积获得Pt / Pd催化剂结构。使用循环伏安法和计时电流法对催化剂结构进行电化学表征。与纯Pt催化剂结构相比,所有含Pd的催化剂结构均以较低的电位促进甲酸氧化,并提供较高的氧化电流。这些催化剂结构的燃料电池表明,阳极上的纯Pd催化剂结构表现出最高的峰值功率密度,即高达28.0 mW / cm {sup} 2。此处介绍的与MEMS兼容的催化剂电沉积和集成方式产生的催化剂结构对甲酸氧化具有很高的活性,并且足够坚固,可以与CMOS后处理兼容。

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