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Stabilizing Single-Atomic Pt by Forming PtFe Bonds for Efficient Diboration of Alkynes.

Xiang MiaoWenxing ChenShuning LvAnran LiYanhong LiQinghua ZhangYonghai YueHewei ZhaoLimin LiuShaojun GuoLin Guo
Published in: Advanced materials (Deerfield Beach, Fla.) (2023)
Precisely tailoring the oxidation state of single-atomic metal in heterogeneous catalysis is an efficient way to stabilize the single-atomic site and promote their activity, but realizing this approach remains a grand challenge to date. Herein, a class of stable single-atomic catalysts with well-tuned oxidation state of Pt by forming PtFe atomic bonds is reported, which are supported by defective Fe 2 O 3  nanosheets on reduced graphene oxide (PFARFNs). These as-synthesized materials can greatly enhance the catalytic activity, stability, and selectivity for the diboration of alkynes. The PFARFNs exhibit high conversion of 99% at 100 °C with an outstanding turnover frequency (TOF) of 545 h -1 , and a relatively high conversion of 58% at room temperature (25 °C) with a TOF of 310 h -1 , which has been hardly achieved previously. Through both experimental and theoretical investigation, it is demonstrated that the fast electron transfer from Fe to Pt in Fe-Pt-O atomic sites in PFARFNs can not only stabilize the single-atomic Pt, but also significantly improve their catalytic activity.
Keyphrases
  • reduced graphene oxide
  • room temperature
  • electron transfer
  • mass spectrometry
  • electron microscopy
  • visible light
  • hydrogen peroxide
  • highly efficient
  • bone mineral density