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High-yield electrochemical hydrogen peroxide production from an enhanced two-electron oxygen reduction pathway by mesoporous nitrogen-doped carbon and manganese hybrid electrocatalysts

机译:由介孔氮掺杂碳和锰杂交电催化剂的增强的双电子氧还原途径高屈服电化学氢过氧化氢。

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摘要

Electrochemical hydrogen peroxide (H2O2) production by the direct two-electron (2e~) oxygen reduction reaction (ORR) has received much attention as a promising alternative to the industrially developed anthraquinone fabrication process. Transition metal (M) and nitrogen doped carbon (M-N-C, M = Fe or Co) catalysts are known to be active for four electron ORR pathways via two + two electron transfer, where the former is for the ORR and the latter for the peroxide reduction reaction (PRR). Here, we report mesoporous N-doped carbon/manganese hybrid electrocatalysts composed of MnO and Mn-Nx coupled with N-doped carbons (Mn-O/N@NCs), which have led to the development of electrocatalysis towards the 2e~ ORR route. Based on the structural and electrochemical characterization, the number of transferred electrons during the ORR on the Mn-O/N@NCs was found to be close to the theoretical value of the 2e~ process, indicating their high activity toward H2O2. The favored ORR process arose due to the increased number of Mn-Nx sites within the mesoporous N-doped carbon materials. Furthermore, there was a strong indication that the PRR is significantly suppressed by adjacent MnO species, demonstrating its highly selective production of H2O2 (>80%) from the oxygen electrochemical process. The results of a real fuel cell device test demonstrated that an Mn-0/N@NC catalyst sustains a very stable current, and we attributed its outstanding activity to a combination of site-dependent facilitation of 2e transfer and a favorable porosity for mass transport.
机译:通过直接两电子(2E〜)氧还原反应(ORR)的电化学氢过氧化氢(H2O2)产生的氧气还原反应(ORR)是由于工业上开发的蒽醌制造过程的有希望的替代方案。已知过渡金属(M)和氮掺杂碳(MNC,M = Fe或CO)催化剂通过两种+两种电子转移为四个电子轨道途径为活性,其中前者是用于过氧化物还原的ORR和后者反应(PRR)。在此,我们将由MNO和MN-NX组成的中孔N-掺杂碳/锰杂化电催化剂与N掺杂的碳(MN-O / N @ NC)组成,这导致了对2E〜ORR路线的电常分的开发。基于结构和电化学表征,发现在MN-O / N @ NCS上的ORR期间转移的电子的数量接近2E〜过程的理论值,表明它们对H2O2的高活性。由于中孔N掺杂碳材料内的Mn-NX位点增加,因此有利于orr过程。此外,强烈指示通过相邻的MNO物种显着抑制PRR,从而证明了其从氧电化学过程的高度选择性生产H 2 O 2(> 80%)。真正的燃料电池装置测试的结果证明了Mn-0 / N + NC催化剂持续了非常稳定的电流,并且我们将其出色的活性归因于2E转移的场地依赖性促进的组合和良好的大规模孔隙率。

著录项

  • 来源
    《Nanoscale Horizons》 |2020年第5期|共7页
  • 作者单位

    Center for Hydrogen and Fuel Cell Research Korea Institute of Science and Technology (KIST) Hwarangno 14-gil 5 Seongbuk-gu Seoul 02792 Republic of Korea.;

    Center for Hydrogen and Fuel Cell Research Korea Institute of Science and Technology (KIST) Hwarangno 14-gil 5 Seongbuk-gu Seoul 02792 Republic of Korea.;

    Materials Architecturing Research Center Korea Institute of Science and Technology Hwarangno 14-gil 5 Seongbuk-gu Seoul 02792 Republic of Korea;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子物理学、原子物理学;工程材料学;
  • 关键词

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