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Catalysis by design: development of a bifunctional water splitting catalyst through an operando measurement directed optimization cycle

机译:通过设计催化:通过操作测量指导的优化循环开发双功能水分解催化剂

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摘要

A critical challenge in energy research is the development of earth abundant and cost-effective materials that catalyze the electrochemical splitting of water into hydrogen and oxygen at high rates and low overpotentials. Key to addressing this issue lies not only in the synthesis of new materials, but also in the elucidation of their active sites, their structure under operating conditions and ultimately, extraction of the structure–function relationships used to spearhead the next generation of catalyst development. In this work, we present a complete cycle of synthesis, operando characterization, and redesign of an amorphous cobalt phosphide (CoPx) bifunctional catalyst. The research was driven by integrated electrochemical analysis, Raman spectroscopy and gravimetric measurements utilizing a novel quartz crystal microbalance spectroelectrochemical cell to uncover the catalytically active species of amorphous CoPx and subsequently modify the material to enhance the activity of the elucidated catalytic phases. Illustrating the power of our approach, the second generation cobalt–iron phosphide (CoFePx) catalyst, developed through an iteration of the operando measurement directed optimization cycle, is superior in both hydrogen and oxygen evolution reactivity over the previous material and is capable of overall water electrolysis at a current density of 10 mA cm–2 with 1.5 V applied bias in 1 M KOH electrolyte solution.
机译:能源研究中的一个关键挑战是开发出富含地球和具有成本效益的材料,这些材料能够以高速率和低超电势催化将水电化学分解为氢和氧。解决这一问题的关键不仅在于合成新材料,还在于阐明它们的活性位点,其在操作条件下的结构,以及最终提取用于引领下一代催化剂开发的结构-功能关系。在这项工作中,我们介绍了非晶态磷化钴(CoPx)双功能催化剂的合成,操作表征和重新设计的完整循环。这项研究是由集成电化学分析,拉曼光谱和重量测量法驱动的,该方法使用新型石英晶体微天平光谱电化学电池来揭示无定形CoPx的催化活性物质,然后对材料进行改性,以增强阐明的催化相的活性。为了说明我们方法的力量,通过对操作测量指导的优化循环进行迭代开发的第二代钴铁磷化氢(CoFePx)催化剂在氢气和氧气的放出反应性方面均优于以前的材料,并且能够将水在1 M KOH电解质溶液中以1.5 V施加的偏压在10 mA cm –2 的电流密度下进行电解。

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