4.8 Article

Light-Driven CO2 Reduction over Prussian Blue Analogues as Heterogeneous Catalysts

Journal

ACS CATALYSIS
Volume 12, Issue 1, Pages 89-100

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acscatal.1c04415

Keywords

photocatalysis; heterogeneous catalysts; Prussian blue analogues; CO2 reduction reaction; density functional theory

Funding

  1. National Natural Science Foundation of China [21773096, 22075119]
  2. Natural Science Foundation of Gansu Province [21JR7RA440]
  3. Fundamental Research Funds for Central Universities [lzujbky-2021-it13]

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The study utilized 10 Prussian blue analogues (PBAs) as heterogeneous catalysts for photocatalytic CO2RR, showing good photocatalytic performance for CO production. Ni-Co PBA exhibited a mass evolution rate of 140 mmol g(-1) h(-1, an apparent quantum efficiency (AQY) of about 0.7%, and a selectivity of about 96.8% for CO. The CO2RR activities of (MCo)-Co-II PBAs are better than those of M-II-Fe PBAs, but the former's selectivities for CO are lower than those of the latter.
The increase of carbon dioxide (CO2) in the atmosphere has resulted in a global greenhouse effect and extreme weather. Photocatalytic conversion of CO2 into valuable chemicals driven by solar energy is conceivable for solving the above problem. Metal-organic frameworks (MOFs) as a class of organic-inorganic hybrid materials have considerable prospect for carbon dioxide reduction reaction (CO2RR) photocatalysis. Nevertheless, most MOFs in the CO2RR still have limited photocatalytic performance as well as selectivity caused by having a single metal and face the challenge of instability. Herein, 10 Prussian blue analogues (PBAs) as heterogeneous catalysts were directly employed for the photocatalytic CO2RR, which exhibit good photocatalytic performance for CO production. A mass evolution rate of 140 mmol g(-1) h(-1), an apparent quantum efficiency (AQY) of about 0.7%, and a selectivity of about 96.8% for CO were obtained over Ni-Co PBA. Notably, the CO2RR activities of (MCo)-Co-II PBAs are better than those of M-II-Fe PBAs, but the former's selectivities for CO are lower than those of the latter. The divergence of activity is dependent on their electron transfer rates, which is confirmed by the electrochemical experiments and spectral characterization. In addition, density functional theory (DFT) as well as H-2 adsorption and desorption experiments of the PBAs reveal the difference in selectivity.

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