AI Article Synopsis

  • The Haber-Bosch process for ammonia synthesis faces challenges due to limitations in heterogeneous catalysis scaling relations.
  • Researchers developed a new α-Fe metallic material (α-Fe-110s) that significantly improves ammonia production efficiency, achieving a rate of 1260 μmol g h without extra heating.
  • By utilizing a unique stepped surface and photo-induced electron transfer, they enhanced the thermal catalytic activity by 3.8-fold compared to traditional catalysts, ultimately increasing ammonia production by 30 times under irradiation.

Article Abstract

Advancing the energy-intensive Haber-Bosch process faces significant challenges due to the intrinsic constraints of scaling relations in heterogeneous catalysis. Herein, we reported an approach of bending the "seesaw effect" to regulate the scaling relations over a tailored α-Fe metallic material (α-Fe-110s), realizing highly efficient light-driven thermal catalytic ammonia synthesis with a rate of 1260 μmol g  h without additional heating. Specifically, the thermal catalytic activity of α-Fe-110s was significantly enhanced by the novel stepped {110} surface, exhibiting a 3.8-fold increase compared to the commercial fused-iron catalyst with promoters at 350 °C. The photo-induced hot electron transfer further accelerates the dinitrogen dissociation and hydrogenation simultaneously, effectively overcoming the limitation of scaling relation over identical sites. Consequently, the ammonia production rate of α-Fe-110s was further enhanced by 30 times at the same temperature with irradiation. This work designs an efficient and sustainable system for ammonia synthesis and provides a novel approach for regulating the scaling relations in heterogeneous catalysis.

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http://dx.doi.org/10.1002/anie.202408309DOI Listing

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