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Breaking the activity-stability trade-off in ammonia borane hydrolysis via atomically engineered platinum single atom-nickel cluster synergistic interfaces

  • Jiankang Zhang
  • , Panzhe Qiao
  • , Jinlong Hu
  • , Xiuxiu Han
  • , Dan Feng
  • , Hao Xu
  • , Xinshuo Zhao
  • , Jun Zhong
  • , Yongxiao Tuo
  • , Yong Qin
  • , Chaohe Xu
  • Northwestern Polytechnical University Xian
  • CAS - Shanghai Advanced Research Institute
  • Chongqing University
  • Tsinghua University
  • Soochow University
  • China University of Petroleum (East China)
  • Qingdao University of Science and Technology

科研成果: 期刊稿件文章同行评审

4 引用 (Scopus)

摘要

Atomically dispersed heterometal catalysts offer ultrahigh atomic utilization and defined heterointerfaces for superior catalytic performance compared to single-metal-site analogues, yet their precise atomic-level construction remains challenging. Herein, a structure-defined atomic-cluster catalyst (PtSANiC/CNT) is synthesized via sequential atomic layer deposition (ALD). This strategy enables atomic-scale engineering of Pt surface exposure and electronic properties through controlled ALD cycles. The optimized PtSANiC/CNT exhibits exceptional activity and durability for ammonia borane (AB) hydrolytic dehydrogenation, breaking the activity-stability trade-off with 9.6-fold and 1.4-fold higher activity than PtSA/CNT (single-atom) and PtSANiSA/CNT (dual-atom) catalysts, respectively. Through in situ X-ray absorption spectroscopy, kinetic and dynamic analysis, and DFT calculations, we elucidate that PtSANiC interfacial sites synergistically promote concurrent H2O adsorption-dissociation and H2 desorption. Mechanistic studies reveal that nickel clusters facilitate H2O activation while Pt single atoms favor B–H bond cleavage due to an upshifted d-band center. This interfacial synergy also enhances selective hydrogenation and O2/H2O2-involved oxidation. The ALD-based atomic engineering approach provides a generalizable route to construct efficient and durable heterometal catalysts with defined active sites.

源语言英语
页(从-至)1357-1368
页数12
期刊Science Bulletin
71
6
DOI
出版状态已出版 - 30 3月 2026

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