Login / Signup

Thermal-Driven Optimization of the Strong Metal-Support Interaction of a Platinum-Manganese Oxide Octahedral Molecular Sieve to Promote Toluene Oxidation: Effect of the Interface Pt 2+ -O v -Mn δ .

Lixin ZhangZhengxuan ZhuWei TanJiawei JiYandi CaiQing TongYan XiongHaiqin WanLin Dong
Published in: ACS applied materials & interfaces (2022)
Strong metal-support interactions (SMSIs) have a significant effect on the performance of supported noble-metal catalysts for volatile organic compound (VOC) elimination. Herein, the strength of the SMSI of Pt/OMS-2 between Pt and the OMS-2 support is regulated by simply changing calcination temperatures, and the catalyst calcined at 300 °C (Pt/OMS-2-300) performs the best in the catalytic combustion of toluene. Through systematic structural characterizations, it is revealed that much more Pt 2+ -O v -Mn δ+ species are formed in Pt/OMS-2-300, which can help facilitate the generation of more reactive oxygen species and promote lattice oxygen mobility. Moreover, the results of in situ DRIFTS experiments further confirm that abundant Pt 2+ -O v -Mn δ+ species at the Pt-MnO 2 interface on Pt/OMS-2-300 can better enhance the adsorption and activation of toluene, thus boosting the catalytic performance in toluene combustion. This newly developed strategy of thermal-driven regulation of the SMSI provides a novel perspective for constructing highly efficient catalysts for VOC emission control.
Keyphrases
  • highly efficient
  • reactive oxygen species
  • metal organic framework
  • high resolution
  • risk assessment
  • gold nanoparticles
  • heavy metals
  • ionic liquid