Login / Signup

Support stabilized PtCu single-atom alloys for propane dehydrogenation.

Xiaohe LiuXianhui WangShiyu ZhenGuodong SunChunlei PeiZhi-Jian ZhaoJinlong Gong
Published in: Chemical science (2022)
PtCu single-atom alloys (SAAs) open an extensive prospect for heterogeneous catalysis. However, as the host of SAAs, Cu suffers from severe sintering at elevated temperature, resulting in poor stability of catalysts. This paper describes the suppression of the agglomeration of Cu nanoparticles under high temperature conditions using copper phyllosilicate (CuSiO 3 ) as the support of PtCu SAAs. Based on quasi in situ XPS, in situ CO-DRIFTS, in situ Raman spectroscopy and in situ XRD, we demonstrated that the interfacial Cu + -O-Si formed upon reduction at 680 °C serves as the adhesive between Cu nanoparticles and the silicon dioxide matrix, strengthening the metal-support interaction. Consequently, the resistance to sintering of PtCu SAAs was improved, leading to high catalytic stability during propane dehydrogenation without sacrificing conversion and selectivity. The optimized PtCu SAA catalyst achieved more than 42% propane conversion and 93% propylene selectivity at 580 °C for at least 30 hours. It paves a way for the design and development of highly active supported single-atom alloy catalysts with excellent thermal stability.
Keyphrases
  • metal organic framework
  • raman spectroscopy
  • highly efficient
  • molecular dynamics
  • high temperature
  • aqueous solution
  • electron transfer
  • ionic liquid
  • room temperature
  • early onset
  • transition metal
  • visible light