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非贵金属基催化剂在析氢反应中的稳定性和活性。

Stability and Activity of Non-Noble-Metal-Based Catalysts Toward the Hydrogen Evolution Reaction.

机构信息

Department of Interface Chemistry and Surface Engineering, Max-Planck-Institut für Eisenforschung GmbH, 40237, Düsseldorf, Germany.

Department of Chemistry and Materials Research Institute, The Pennsylvania State University, University Park, PA, 16802, USA.

出版信息

Angew Chem Int Ed Engl. 2017 Aug 7;56(33):9767-9771. doi: 10.1002/anie.201704021. Epub 2017 Jul 10.

Abstract

A fundamental understanding of the behavior of non-noble based materials toward the hydrogen evolution reaction is crucial for the successful implementation into practical devices. Through the implementation of a highly sensitive inductively coupled plasma mass spectrometer coupled to a scanning flow cell, the activity and stability of non-noble electrocatalysts is presented. The studied catalysts comprise a range of compositions, including metal carbides (WC), sulfides (MoS ), phosphides (Ni P , Co P), and their base metals (W, Ni, Mo, Co); their activity, stability, and degradation behavior was elaborated and compared to the state-of-the-art catalyst platinum. The non-noble materials are stable at HER potentials but dissolve substantially when no current is flowing. Through pre- and post-characterization of the catalysts, explanations of their stability (thermodynamics and kinetics) are discussed, challenges for the application in real devices are analyzed, and strategies for circumventing dissolution are suggested. The precise correlation of metal dissolution with applied potential/current density allows for narrowing down suitable material choices as replacement for precious group metals as for example, platinum and opens up new ways in finding cost-efficient, active, and stable new-generation electrocatalysts.

摘要

对于成功将非贵金属基材料应用于实际设备中,深入了解其对析氢反应的行为至关重要。通过采用高灵敏度电感耦合等离子体质谱仪与扫描流动池相结合的方式,对非贵金属电催化剂的活性和稳定性进行了研究。研究的催化剂包括一系列组成部分,包括金属碳化物(WC)、硫化物(MoS )、磷化物(NiP、CoP)及其相应的金属(W、Ni、Mo、Co)。对它们的活性、稳定性和降解行为进行了详细阐述,并与最先进的催化剂铂进行了比较。非贵金属材料在析氢电位下稳定,但在无电流流动时会大量溶解。通过对催化剂进行预处理和后处理,讨论了其稳定性(热力学和动力学)的解释,分析了在实际设备中应用所面临的挑战,并提出了避免溶解的策略。金属溶解与施加的电位/电流密度之间的精确相关性,可以缩小合适材料的选择范围,以替代贵金属,例如铂,并为寻找具有成本效益、活性和稳定性的新一代电催化剂开辟了新途径。

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