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Unraveling Two Pathways for Electrochemical Alcohol and Aldehyde Oxidation on NiOOH

机译:在NiOOH上解开用于电化学醇的两种途径和醛氧化

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摘要

Selective oxidation of alcohols to their corresponding aldehyde or carboxylic acid is one of the most important classes of organic synthesis reactions. In addition, electrochemical alcohol oxidation is considered a viable anode reaction that can be paired with H_2 evolution or other reductive fuel production reactions in electrochemical and photoelectrochemical cells. NiOOH, a material that has been extensively studied as an oxygen evolution catalyst, is among the most promising electrocatalysts for selective alcohol oxidation. Electrochemical alcohol oxidation by NiOOH has been understood since the 1970s to proceed through a hydrogen atom transfer to NiOOH. In this study, we establish that there is a second, more dominant general alcohol oxidation pathway on NiOOH enabled at more positive potentials. Using a three-step electrochemical procedure we developed, we deconvoluted the currents corresponding to these two pathways for various alcohols and aldehydes. The results show that alcohols and aldehydes have a distinct difference in their respective preferences for the two oxidation pathways. Our three-step electrochemical procedure also allowed us to evaluate the Ni valence involved with the different oxidation pathways to elucidate their mechanistic differences. Using these experimental results coupled with a computational investigation, we propose that the new pathway entails hydride transfer from the substrate to Ni~(4+) sites in NiOOH. This study offers an essential foundation to understand various oxidative electrochemical dehydrogenation reactions on oxide and hydroxide-based catalytic electrodes.
机译:选择性氧化醇对其相应的醛或羧酸是最重要的有机合成反应类别之一。此外,电化学醇氧化被认为是可行的阳极反应,可与电化学和光电子化细胞中的H_2进化或其他还原燃料产生反应配对。 NiOOH,一种已被广泛研究作为氧进化催化剂的材料,是用于选择性醇氧化的最有前景的电催化剂之一。自20世纪70世纪70世纪70世纪70世纪70世纪70世纪70世纪70年代以来,通过氢原子转移至NiOOH,已经理解了NiOOH的电化学醇氧化。在这项研究中,我们在更积极的潜力中确定了NiOOH上的第二种,更常见的一般醇氧化途径。使用我们开发的三步电化学程序,我们将对应于各种醇和醛的这两种途径的电流进行了去折杂。结果表明,醇和醛对两个氧化途径的各自偏好具有明显的差异。我们的三步电化学程序还允许我们评估与不同氧化途径涉及的Ni效果阐明以阐明其机械差异。使用这些实验结果与计算研究相结合,我们提出了新的途径从基质到NiOOH中的Ni〜(4+)位点需要氢化物转移。本研究提供了理解氧化物和氢氧化物基催化电极的各种氧化电化学脱氢反应的基础。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2020年第51期|21538-21547|共10页
  • 作者单位

    Department of Chemistry University of Wisconsin-Madison Madison Wisconsin 53706 United States;

    Department of Chemistry Yale University New Haven Connecticut 06520 United States;

    Department of Chemistry Yale University New Haven Connecticut 06520 United States;

    Department of Chemistry University of Wisconsin-Madison Madison Wisconsin 53706 United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-18 23:00:58

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