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首页> 外文期刊>Journal of Colloid and Interface Science >Cost-effective and efficient water and urea oxidation catalysis using nickel-iron oxyhydroxide nanosheets synthesized by an ultrafast method
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Cost-effective and efficient water and urea oxidation catalysis using nickel-iron oxyhydroxide nanosheets synthesized by an ultrafast method

机译:使用超速方法合成的镍铁铁羟基氧化物纳米蛋白经济高效的水和尿素氧化催化分析

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The synthesis of earth-abundant, low-cost, and stable electrocatalysts with high efficiency in the oxygen evolution reaction (OER) is a necessary requirement for improving the effectiveness of electrochemical water splitting approach. To date, expensive electrode materials and time-consuming synthesis procedures have generally been used for the electrocatalysts applied in water splitting, which limits their efficiency. Herein, nickel-iron oxyhydroxide nanosheets are fabricated by a scalable and ultrafast (requiring only 5 s) wet chemical strategy on a nickel foam substrate. The experimental results indicate that compared to recently reported catalysts, the prepared nickel-iron oxyhydroxide electrode has a high number of active sites and low reaction barrier, enabling efficient OER catalysis in an alkaline electrolyte. In particular, the prepared nickel-iron oxyhydroxide electrode requires an ultralow overpotential of 230 mV to reach a current density of 50 mA cm(-2), with excellent long-term stability for 75 h. Moreover, the nickeliron oxyhydroxide also performs well towards the electrocatalytic urea oxidation reaction (UEOR), with a very low potential of 1.38 and 1.41 V vs RHE (reversible hydrogen electrode) to reach 50 and 100 mA cm(-2) current density in 1 M KOH with 0.33 M urea electrolyte. This ultrafast synthesis approach can be extended to prepare electrocatalysts used for other electrochemical reactions. (C) 2020 Published by Elsevier Inc.
机译:在析氧反应(OER)中,合成富含稀土、成本低、稳定性好、效率高的电催化剂是提高电化学分解水方法有效性的必要条件。迄今为止,用于水分解的电催化剂通常使用昂贵的电极材料和耗时的合成程序,这限制了它们的效率。在此,氢氧化镍铁纳米片是通过在泡沫镍基底上采用可伸缩且超快(仅需5秒)的湿化学策略制成的。实验结果表明,与最近报道的催化剂相比,所制备的氢氧化镍铁电极具有大量的活性中心和较低的反应势垒,能够在碱性电解质中实现高效的OER催化。特别是,制备的氢氧化镍铁电极需要230 mV的超低过电位,以达到50 mA cm(-2)的电流密度,并具有75 h的良好长期稳定性。此外,氢氧化镍铁还对电催化尿素氧化反应(UEOR)表现良好,在1 M KOH和0.33 M尿素电解液中,与RHE(可逆氢电极)相比,1.38和1.41 V的极低电位可达到50和100 mA cm(-2)电流密度。这种超快合成方法可以推广到制备用于其他电化学反应的电催化剂。(C) 2020年由爱思唯尔公司出版。

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