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Optimal Electrocatalytic Pd/MWNTs Nanocatalysts toward Formic Acid Oxidation

机译:最佳电催化Pd / MWNTs纳米催化剂对甲酸氧化

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摘要

The operating conditions such as composition of electrolyte and temperature can greatly influence the formic acid (HCOOH) oxidation reaction (FAOR). Palladium decorated multi-walled carbon nanotubes (Pd/MWNTs) were successfully synthesized and employed as nanocatalysts to explore the effects of formic acid, sulfuric acid (H2SO4) concentration and temperature on FAOR. Both the hydrogen adsorption in low potential range and the oxidation of poisoning species during the high potential range in cyclic voltammetry were demonstrated to contribute to the enhanced electroactivity of Pd/MWNTs. The as-synthesized Pd/MWNTs gave the best performance under a condition with balanced adsorptions of HCOOH and H2SO4 molecules. The dominant dehydrogenation pathway on Pd/MWNTs can be largely depressed by the increased dehydration pathway, leading to an increased charge transfer resistance (Rct). Increasing HCOOH concentration could directly increase the dehydration process proportion and cause the production of COads species. H2SO4 as donor of H+ greatly facilitated the onset oxidation of HCOOH in the beginning process but it largely depressed the HCOOH oxidation with excess amount of H+. Enhanced ion mobility with increasing the temperature was mainly responsible for the increased current densities, improved tolerance stabilities and reduced Rct values, while dehydration process was also increased simultaneously.
机译:电解液成分和温度等操作条件会极大地影响甲酸(HCOOH)氧化反应(FAOR)。成功地合成了钯装饰的多壁碳纳米管(Pd / MWNTs),并用作纳米催化剂,研究了甲酸,硫酸(H2SO4)的浓度和温度对FAOR的影响。在循环伏安法中,低电位范围内的氢吸附和高电位范围内的中毒物质的氧化均被证明有助于增强Pd / MWNTs的电活性。在平衡吸附HCOOH和H2SO4分子的条件下,合成的Pd / MWNTs表现出最佳性能。增加的脱水途径可大大抑制Pd / MWNTs上的主要脱氢途径,从而导致电荷转移阻力(Rct)增加。增加HCOOH浓度可直接增加脱水过程的比例,并导致产生COads物种。 H2SO4作为H + 的供体在开始过程中极大地促进了HCOOH的氧化,但是在过量的H + 的作用下大大抑制了HCOOH氧化。随着温度的升高离子迁移率的提高主要是由于电流密度的提高,耐受稳定性的提高和Rct值的降低,而脱水过程也同时增加。

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