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Optimization of a Hierarchical Porous-Structured Reactor to Mitigate Mass Transport Limitations for Efficient Electrocatalytic Ammonia Oxidation through a Three-Electron-Transfer Pathway

机译:通过三电子转移途径减轻高催化氨氧化的分层多孔结构反应器的优化,以减轻高效电催化氨氧化

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摘要

Regulation of fast three-electron-transfer processes for electrocatalytic oxidation of ammonia to nitrogen by achieving efficient generation and utilization of active sites is the optimal strategy in ammonia-containing wastewater treatment. However, the limited number of accessible active sites and sluggish interfacial mass transfer are two main bottlenecks restricting conventional ammonia oxidation configurations. Herein, we develop a macroporous Ni foam electrode integrated with vertically aligned two-dimensional mesoporous Ni_2P nanosheets to create sufficient exposure of active centers. A novel ammonia oxidation reactor with the developed hierarchical porous-structured electrodes was assembled to construct an intensified microfluidic process with flow-through operation to mitigate macroscopic mass transport limitations. The confined micro reaction space in the hierarchical porous reactor further promotes spontaneous nanoscale diffusion/convection of the target contaminant to high-valence Ni sites and enhances the microscopic mass transfer. The combined results of electrochemical measurements and in situ Raman spectra showed that the ammonia degradation mechanism results from direct oxidation by the high-valence Ni, significantly different from the conventional indirect active-chlorine-species-mediated oxidation. The optimized reactor achieves high-efficiency three-electron-transfer ammonia conversion with an ammonia removal efficiency of ~70% from an initial concentration of ~1400 mg/L and byproduct production of ~4%, significantly superior to a conversion unit comprising a featureless Ni-based electrode in the immersed configuration, which had >50% byproduct yield. 20 days of continuous operation under variable conditions achieved >90% ammonia degradation performance and an energy consumption of 25-42 kW h kg~(-1) N (1 order of magnitude lower than the active-chlorine-mediated process), showing the potential of the reactor in medium-concentration ammonia-containing wastewater treatment.
机译:通过实现有效发电和利用活性位点通过实现活性位点的快速三电子转移方法对氮气的电催化氧化是含氨的废水处理中的最佳策略。然而,有限数量的可接近的活性网站和缓慢的界面传质是限制常规氨氧化构造的两个主要瓶颈。在此,我们开发一种与垂直对齐的二维介孔Ni_2P纳米片集成的大孔Ni泡沫电极,以产生充分的活性中心暴露。组装了一种新的氨氧化反应器,其组装了发育的分层结构电极,以构建强化的微流体过程,其流动通过操作以减轻宏观传输限制。分层多孔反应器中的狭窄的微反应空间进一步促使靶污染物的自发纳米级扩散/对流,高价值Ni位点,并增强了微观传质。电化学测量和原位拉曼光谱的组合结果表明,氨质降解机理由高价Ni的直接氧化产生,与常规间接活性氯物种介导的氧化显着不同。优化的反应器实现高效率的三电子转移氨转化率,氨去除效率〜70%的初始浓度为约1400mg / L,副产品产生〜4%,显着优于包括无特色的转换单元浸渍结构中基于Ni的电极,其具有> 50%副产率。在可变条件下连续运行20天,达到50%氨降解性能和25-42 kW H kg〜(-1)n(比活性氯介导的工艺低1级),显示出来反应器在含中浓氨的废水处理中的电位。

著录项

  • 来源
    《Environmental Science & Technology》 |2021年第18期|12596-12606|共11页
  • 作者单位

    State Key Laboratory of Environmental Aquatic Chemistry Research Center for Eco-Environmental Sciences Chinese Academy of Sciences Beijing 100085 China University of Chinese Academy of Sciences Beijing 100049 China;

    Center for Water and Ecology State Key Joint Laboratory of Environment Simulation and Pollution Control School of Environment Tsinghua University Beijing 100084 China;

    Center for Water and Ecology State Key Joint Laboratory of Environment Simulation and Pollution Control School of Environment Tsinghua University Beijing 100084 China;

    Center for Water and Ecology State Key Joint Laboratory of Environment Simulation and Pollution Control School of Environment Tsinghua University Beijing 100084 China;

    Center for Water and Ecology State Key Joint Laboratory of Environment Simulation and Pollution Control School of Environment Tsinghua University Beijing 100084 China Key Laboratory of Drinking Water Science and Technology Research Center for Eco-Environmental Sciences Chinese Academy of Sciences Beijing 100085 China;

  • 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
  • 中图分类
  • 关键词

    hierarchical porous structure; mass transport intensification; electrocatalytic ammonia oxidation; three-electron-transfer; transition-metal phosphide;

    机译:分层多孔结构;大众运输强化;电催化氨氧化;三电子转移;过渡金属磷化物;

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