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RuCo Nanoalloy Catalysts Obtained From In-Situ Reconstruction of High-Entropy Oxides for Green Ammonia Synthesis

  • Xiuyun Wang
  • , Jiahao Yu
  • , Kailin Su
  • , Yangyu Zhang
  • , Yiheng Zhuan
  • , Yanliang Zhou
  • , Haifeng Qi
  • , Lirong Zheng
  • , Junjie Wang
  • , Lilong Jiang
  • , Hideo Hosono
  • Fuzhou University
  • Northwestern Polytechnical University Xian
  • Cardiff University
  • CAS - Institute of High Energy Physics
  • Institute of Science Tokyo

Research output: Contribution to journalArticlepeer-review

Abstract

Optimizing promoters is crucial for designing efficient catalysts for ammonia (NH3) synthesis under mild conditions. However, this endeavor is often hampered by a fundamental trade-off: weak metal-promoter interactions (MPI) lead to promoter segregation, while excessively strong ones block active sites, both diminishing the efficiency of promotion. In this work, we report a high-entropy oxide (HEO) nanoparticle catalyst integrated with active metals (Ru/Co) and promoters (La/Ce/Sm) for efficient NH3 synthesis via an in situ reconstruction strategy. Our investigation reveals that the HEO undergoes in situ reconstruction to form RuCo nanoalloys anchored on rare-earth oxide nanoislands, which simultaneously realizes the exposure of active sites and strong metal-promoter interaction. This entropy reduction process facilitates the formation of surface oxygen vacancy sites with low work function electrons, facilitating electron transfer to the metal alloys to drive N2 dissociation. Furthermore, alloying Ru with Co metal lowers the d-band center to promote NH3 desorption. Consequently, the optimized RuCo-HEO catalyst delivers a remarkable NH3 synthesis rate of 58.2 mmol g1 h1 (2.41% concentration) at 400°C and 1 MPa, approaching the thermodynamic equilibrium value (2.44%). This work provides an in situ reconstruction strategy to engineer active sites exposure and promoter effect for efficient green NH3 synthesis.

Original languageEnglish
JournalAngewandte Chemie - International Edition
DOIs
StateAccepted/In press - 2026

Keywords

  • ammonia synthesis
  • high-entropy oxide
  • in situ reconstruction
  • metal–promoter interaction
  • RuCo nanoalloy

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