4.5 Article

Rationally tuning the active sites of copper-based catalysts towards formaldehyde reforming into hydrogen

Journal

SUSTAINABLE ENERGY & FUELS
Volume 5, Issue 24, Pages 6470-6477

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1se01326b

Keywords

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Funding

  1. National Natural Science Foundation of China [21872123, 22172143, 22002141]
  2. Fundamental Research Funds of Zhejiang Sci-Tech University [2021Q049]
  3. State Key Laboratory of Photocatalysis on Energy and Environment, Fuzhou University [SKLPEE-KF202107]
  4. Fundamental Research Funds of Shaoxing Keqiao Research Institute of Zhejiang Sci-Tech University [KYY2021005Y]

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Direct splitting of liquid organic fuels using a particulate catalyst is an effective way to produce hydrogen on a large scale. The Cu/MgO catalyst demonstrated exceptional turnover frequencies (TOF, 320.71 h(-1)) and improved stability under aerobic conditions in neutral media. This work provides opportunities for the efficient conversion of liquid organic fuels into hydrogen under ambient conditions.
Direct splitting of liquid organic fuels using a particulate catalyst is an effective way to produce hydrogen on a large scale. Here, we report a simple and reliable method for the synthesis of a Cu/MgO catalyst and its potential for aqueous-phase formaldehyde reforming into H-2. Experimental observations reveal that the chemical state of Cu species could be finely tuned by altering the partial pressure of oxygen, thereby affecting the catalytic activity of the Cu/MgO catalyst. In detail, a highly reactive Cu(0) species is formed via the in situ reduction of CuO with oxygen, which is vital to the structural stability and the active sites exposure of the catalyst. Additionally, the adsorption of oxygen is synergistically optimized at the heterointerface, benefiting the breaking of C-H bonds in HCHO and substantially accelerating the hydrogen production kinetics with the generation of OOH radicals. Under aerobic conditions in neutral media, the resulting catalyst liberates H-2 with exceptional turnover frequencies (TOF, 320.71 h(-1)) and improved stability. The present work offers opportunities for the efficient conversion of liquid organic fuels into H-2 under ambient conditions.

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