Rational Design of N-Doped Carbon-Coated Cobalt Nanoparticles for Highly Efficient and Durable Photothermal CO Conversion.

Adv Mater

School of Chemistry and Materials Science, Hefei National Research Center for Physical Sciences at the Microscale, National Synchrotron Radiation Laboratory, School of Nuclear Science and Technology, University of Science and Technology of China, Hefei, Anhui, 230026, P. R. China.

Published: October 2023

AI Article Synopsis

  • Photothermal CO hydrogenation offers a sustainable method for producing high-value chemicals and fuels, but it requires efficient catalysts that are durable and made from abundant materials.
  • Researchers developed N-doped carbon-coated cobalt (Co) nanoparticles through a two-step pyrolysis process, resulting in a catalyst with impressive activity, generating CO at a rate of 0.75 mol g/h under full light exposure.
  • The catalyst's success is attributed to the optimal size of the Co nanoparticles, thickness of carbon layers, and nitrogen doping, which enhance reactant activation and CO desorption through a strong photothermal effect.

Article Abstract

Photothermal CO hydrogenation to high-value-added chemicals and fuels is an appealing approach to alleviate energy and environmental concerns. However, it still relies on the development of earth-abundant, efficient, and durable catalysts. Here, the design of N-doped carbon-coated Co nanoparticles (NPs), as a photothermal catalyst, synthesized through a two-step pyrolysis of Co-based ZIF-67 precursor, is reported. Consequently, the catalyst exhibits remarkable activity and stability for photothermal CO hydrogenation to CO with a 0.75 mol g h CO production rate under the full spectrum of light illumination. The high activity and durability of these Co NPs are mainly attributed to the synergy of the attuned size of Co NPs, the thickness of carbon layers, and the N doping species. Impressively, the experimental characterizations and theoretical simulations show that such a simple N-doped carbon coating strategy can effectively facilitate the desorption of generated CO and activation of reactants due to the strong photothermal effect. This work provides a simple and efficient route for the preparation of highly active and durable nonprecious metal catalysts for promising photothermal catalytic reactions.

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Source
http://dx.doi.org/10.1002/adma.202302537DOI Listing

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