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Upgrading of nitrate to hydrazine through cascading electrocatalytic ammonia production with controllable N-N coupling

Author

Listed:
  • Shunhan Jia

    (Chinese Academy of Sciences
    University of Chinese Academy of Sciences)

  • Libing Zhang

    (Chinese Academy of Sciences
    University of Chinese Academy of Sciences)

  • Hanle Liu

    (Chinese Academy of Sciences
    University of Chinese Academy of Sciences
    Nankai University)

  • Ruhan Wang

    (Chinese Academy of Sciences
    University of Chinese Academy of Sciences)

  • Xiangyuan Jin

    (Chinese Academy of Sciences
    University of Chinese Academy of Sciences)

  • Limin Wu

    (Chinese Academy of Sciences
    University of Chinese Academy of Sciences)

  • Xinning Song

    (Chinese Academy of Sciences
    University of Chinese Academy of Sciences)

  • Xingxing Tan

    (Chinese Academy of Sciences)

  • Xiaodong Ma

    (Chinese Academy of Sciences)

  • Jiaqi Feng

    (Chinese Academy of Sciences
    China University of Petroleum)

  • Qinggong Zhu

    (Chinese Academy of Sciences
    University of Chinese Academy of Sciences)

  • Xinchen Kang

    (Chinese Academy of Sciences
    University of Chinese Academy of Sciences)

  • Qingli Qian

    (Chinese Academy of Sciences
    University of Chinese Academy of Sciences)

  • Xiaofu Sun

    (Chinese Academy of Sciences
    University of Chinese Academy of Sciences)

  • Buxing Han

    (Chinese Academy of Sciences
    University of Chinese Academy of Sciences
    East China Normal University)

Abstract

Nitrogen oxides (NOx) play important roles in the nitrogen cycle system and serve as renewable nitrogen sources for the synthesis of value-added chemicals driven by clean electricity. However, it is challenging to achieve selective conversion of NOx to multi-nitrogen products (e.g., N2H4) via precise construction of a single N-N bond. Herein, we propose a strategy for NOx-to-N2H4 under ambient conditions, involving electrochemical NOx upgrading to NH3, followed by ketone-mediated NH3 to N2H4. It can achieve an impressive overall NOx-to-N2H4 selectivity of 88.7%. We elucidate mechanistic insights into the ketone-mediated N-N coupling process. Diphenyl ketone (DPK) emerges as an optimal mediator, facilitating controlled N-N coupling, owing to its steric and conjugation effects. The acetonitrile solvent stabilizes and activates key imine intermediates through hydrogen bonding. Experimental results reveal that Ph2CN* intermediates formed on WO3 catalysts acted as pivotal monomers to drive controlled N-N coupling with high selectivity, facilitated by lattice-oxygen-mediated dehydrogenation. Additionally, both WO3 catalysts and DPK mediators exhibit favorable reusability, offering promise for green N2H4 synthesis.

Suggested Citation

  • Shunhan Jia & Libing Zhang & Hanle Liu & Ruhan Wang & Xiangyuan Jin & Limin Wu & Xinning Song & Xingxing Tan & Xiaodong Ma & Jiaqi Feng & Qinggong Zhu & Xinchen Kang & Qingli Qian & Xiaofu Sun & Buxin, 2024. "Upgrading of nitrate to hydrazine through cascading electrocatalytic ammonia production with controllable N-N coupling," Nature Communications, Nature, vol. 15(1), pages 1-11, December.
  • Handle: RePEc:nat:natcom:v:15:y:2024:i:1:d:10.1038_s41467-024-52825-1
    DOI: 10.1038/s41467-024-52825-1
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    References listed on IDEAS

    as
    1. Zhigang Chen & Wenbin Gong & Juan Wang & Shuang Hou & Guang Yang & Chengfeng Zhu & Xiyue Fan & Yifan Li & Rui Gao & Yi Cui, 2023. "Metallic W/WO2 solid-acid catalyst boosts hydrogen evolution reaction in alkaline electrolyte," Nature Communications, Nature, vol. 14(1), pages 1-12, December.
    2. Yongmeng Wu & Jinghui Zhao & Changhong Wang & Tieliang Li & Bo-Hang Zhao & Ziyang Song & Cuibo Liu & Bin Zhang, 2023. "Electrosynthesis of a nylon-6 precursor from cyclohexanone and nitrite under ambient conditions," Nature Communications, Nature, vol. 14(1), pages 1-7, December.
    3. Jiadong Chen & Chunhong Chen & Minkai Qin & Ben Li & Binbin Lin & Qing Mao & Hongbin Yang & Bin Liu & Yong Wang, 2022. "Reversible hydrogen spillover in Ru-WO3-x enhances hydrogen evolution activity in neutral pH water splitting," Nature Communications, Nature, vol. 13(1), pages 1-10, December.
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