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Reduction-Controlled Atomic Migration for Single Atom Alloy Library.

Yan-Ru WangQingfeng ZhuangRui CaoYi LiFei-Yue GaoZhao-Rui LiZhen HeLei ShiYu-Feng MengXu LiJin-Long WangYu DuanMin-Rui GaoXiao ZhengShu-Hong Yu
Published in: Nano letters (2022)
Picturing the atomic migration pathways of catalysts in a reactive atmosphere is of central significance for uncovering the underlying catalytic mechanisms and directing the design of high-performance catalysts. Here, we describe a reduction-controlled atomic migration pathway that converts nanoparticles to single atom alloys (SAAs), which has remained synthetically challenging in prior attempts due to the elusive mechanism. We achieved this by thermally treating the noble-metal nanoparticles M (M = Ru, Rh, Pd, Ag, Ir, Pt, and Au) on metal oxide (CuO) supports with H 2 /Ar. Atomic-level characterization revealed such conversion as the synergistic consequence of noble metal-promoted H 2 dissociation and concomitant CuO reduction. The observed atomic migration pathway offers an understanding of the dynamic mechanisms study of nanomaterials formation and catalyst design.
Keyphrases
  • highly efficient
  • electron microscopy
  • molecular dynamics
  • metal organic framework
  • single cell
  • room temperature