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Recommended Practices and Benchmark Activity for Hydrogen and Oxygen Electrocatalysis in Water Splitting and Fuel Cells

机译:水分解和燃料电池中氢气和氧气电催化的推荐做法和基准活性

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摘要

Electrochemical energy storage by making H-2 an energy carrier from water splitting relies on four elementary reactions, i.e., the hydrogen evolution reaction (HER), hydrogen oxidation reaction (HOR), oxygen evolution reaction (OER), and oxygen reduction reaction (ORR). Herein, the central objective is to recommend systematic protocols for activity measurements of these four reactions and benchmark activities for comparison, which is critical to facilitate the research and development of catalysts with high activity and stability. Details for the electrochemical cell setup, measurements, and data analysis used to quantify the kinetics of the HER, HOR, OER, and ORR in acidic and basic solutions are provided, and examples of state-of-the-art specific and mass activity of catalysts to date are given. First, the experimental setup is discussed to provide common guidelines for these reactions, including the cell design, reference electrode selection, counter electrode concerns, and working electrode preparation. Second, experimental protocols, including data collection and processing such as ohmic- and background-correction and catalyst surface area estimation, and practice for testing and comparing different classes of catalysts are recommended. Lastly, the specific and mass activity activities of some state-of-the-art catalysts are benchmarked to facilitate the comparison of catalyst activity for these four reactions across different laboratories.
机译:通过使H-2成为水分解的能量载体来存储电化学能量,取决于四个基本反应,即氢气生成反应(HER),氢气氧化反应(HOR),氧气生成反应(OER)和氧气还原反应(ORR) )。在此,主要目标是为这四个反应的活性测量和基准活性的比较推荐系统的方案,这对于促进具有高活性和稳定性的催化剂的研究和开发至关重要。提供了用于量化酸性和碱性溶液中HER,HOR,OER和ORR动力学的电化学电池设置,测量和数据分析的详细信息,并提供了最新技术的比活性和质量活性的示例。给出了迄今为止的催化剂。首先,讨论实验设置以为这些反应提供通用指导,包括电池设计,参比电极选择,对电极问题和工作电极制备。其次,推荐实验方案,包括数据收集和处理,如欧姆校正和背景校正以及催化剂表面积估算,以及测试和比较不同类别催化剂的实践。最后,对一些最先进的催化剂的比活和质量活度进行了基准测试,以方便比较不同实验室中这四个反应的催化剂活度。

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  • 来源
    《Advanced Materials》 |2019年第31期|1806296.1-1806296.24|共24页
  • 作者单位

    Nanyang Technol Univ Sch Mat Sci & Engn 50 Nanyang Ave Singapore 639798 Singapore|Cambridge Ctr Adv Res & Educ Singapore 1 CREATE Way Singapore 138602 Singapore|Nanyang Technol Univ Solar Fuels Lab 50 Nanyang Ave Singapore 639798 Singapore|Nanyang Technol Univ Energy Res Inst 50 Nanyang Ave Singapore 639798 Singapore;

    MIT Electrochem Energy Lab 77 Massachusetts Ave Cambridge MA 02139 USA|MIT Dept Mech Engn Cambridge MA 02139 USA;

    MIT Electrochem Energy Lab 77 Massachusetts Ave Cambridge MA 02139 USA|MIT Dept Mat Sci & Engn Cambridge MA 02139 USA;

    MIT Electrochem Energy Lab 77 Massachusetts Ave Cambridge MA 02139 USA|MIT Res Lab Elect 77 Massachusetts Ave Cambridge MA 02139 USA;

    Imperial Coll London Dept Mat London SW7 2AZ England;

    Univ Goettingen Inst Mat Phys Friedrich Hund Pl 1 D-37077 Gottingen Germany;

    Nanyang Technol Univ Sch Mat Sci & Engn 50 Nanyang Ave Singapore 639798 Singapore|Cambridge Ctr Adv Res & Educ Singapore 1 CREATE Way Singapore 138602 Singapore|Nanyang Technol Univ Solar Fuels Lab 50 Nanyang Ave Singapore 639798 Singapore|Nanyang Technol Univ Energy Res Inst 50 Nanyang Ave Singapore 639798 Singapore|Singapore HUJ Alliance Res & Enterprise NEW CREATE Phase 2 CREATE Singapore 138602 Singapore;

    MIT Electrochem Energy Lab 77 Massachusetts Ave Cambridge MA 02139 USA|MIT Dept Mech Engn Cambridge MA 02139 USA|MIT Dept Mat Sci & Engn Cambridge MA 02139 USA|MIT Res Lab Elect 77 Massachusetts Ave Cambridge MA 02139 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    benchmark catalysts; hydrogen electrocatalysis; kinetic activity measurement; oxygen electrocatalysis; recommendation;

    机译:基准催化剂;氢电催化动力学活性测量;氧电催化建议;

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