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Volume 43 Issue 7
Jul.  2025
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Article Contents
NIU Yuqi, LIU Ning, DAI Chengna, XU Ruinian, WANG Ning, YU Gangqiang, CHEN Biaohua. Catalysts for C3H8/CO2 catalytic conversion to syngas and their performance evaluation[J]. ENVIRONMENTAL ENGINEERING , 2025, 43(7): 220-231. doi: 10.13205/j.hjgc.202507024
Citation: NIU Yuqi, LIU Ning, DAI Chengna, XU Ruinian, WANG Ning, YU Gangqiang, CHEN Biaohua. Catalysts for C3H8/CO2 catalytic conversion to syngas and their performance evaluation[J]. ENVIRONMENTAL ENGINEERING , 2025, 43(7): 220-231. doi: 10.13205/j.hjgc.202507024

Catalysts for C3H8/CO2 catalytic conversion to syngas and their performance evaluation

doi: 10.13205/j.hjgc.202507024
  • Received Date: 2023-10-12
  • Accepted Date: 2023-12-21
  • Rev Recd Date: 2023-11-23
  • Available Online: 2025-09-11
  • In present work, based on the H2-small-molecule in situ directing strategy, a series of ultra-low Pt0.2/M0.6 bimetallic supported (0.2% Pt, 0.6% M) CeO2-based catalysts [(Pt0.2/M0.6@CeO2M = Sn, Fe, Cu, Co, Zn, Ni] were prepared by one-step hydrothermal synthesis approach and investigated for the CO2 oxidation of C3H8 to synthesis gas (propane dry reforming, PDR). The effects of H2 pressure (0~1.5 MPa), active metal composition, and ratio on the catalytic performance were systematically investigated. The optimal catalyst, Pt0.2/Ni0.6@CeO2-1H2 (1 MPa H2), was selected, achieving efficient conversions of C3H8 (29.9%) and CO2 (73.9%) at 600 ℃, with a CO selectivity of 92.5%. XRD, nitrogen adsorption-desorption, ICP, TEM, H2-TPR, and XPS were further used to characterize the structure morphology and physicochemical properties of the catalysts. The results showed that the H2-small-molecule could effectively increase the number of oxygen vacancies in the CeO2 carrier, promote the surface dispersion of Pt and Ni, increase the number of active metal sites, and ultimately improve the related catalytic performance. In addition, there is a synergistic effect between the loaded metal Pt and Ni, where Pt enhances the interaction between Ni and the carrier, thereby improving the stability of Ni.
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