Chinese Journal of Catalysis ›› 2024, Vol. 64: 112-122.DOI: 10.1016/S1872-2067(24)60095-1

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Microenvironment and electronic state modulation of Pd nanoparticles within MOFs for enhancing low-temperature activity towards DCPD hydrogenation

Zhiyuan Liua, Changan Wanga, Ping Yangc,*(), Wei Wangc, Hongyi Gaoa,b,*(), Guoqing Ana, Siqi Liua, Juan Chena, Tingting Guoa, Xinmeng Xua, Ge Wanga,b,*()   

  1. aBeijing Advanced Innovation Center for Materials Genome Engineering, Beijing Key Laboratory of Function Materials for Molecule & Structure Construction, School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing 100083, China
    bShunde Innovation School, University of Science and Technology Beijing, Shunde 528399, Guangdong, China
    cSinopec Research Institute of Petroleum Processing Co., Ltd, SINOPEC, Beijing 100083, China
  • Received:2024-05-11 Accepted:2024-07-07 Online:2024-09-18 Published:2024-09-19
  • Contact: * E-mail: hygao@ustb.edu.cn (H. Gao),yangp.ripp@sinopec.com (P. Yang),gewang@ustb.edu.cn (G. Wang).
  • Supported by:
    National Key R&D Program of China(2021YFB3500700);Natural Science Foundation of Guangdong Province of China(2022A1515011918)

Abstract:

Precise control of the local environment and electronic state of the guest is an important method of controlling catalytic activity and reaction pathways. In this paper, guest Pd NPs were introduced into a series of host UiO-67 MOFs with different functional ligands and metal nodes, the microenvironment and local electronic structure of Pd is modulated by introducing bipyridine groups and changing metal nodes (Ce6O6 or Zr6O6). The bipyridine groups not only promoted the dispersion Pd NPs, but also facilitated electron transfer between Pd and UiO-67 MOFs through the formation of Pd-N bridges. Compared with Zr6 clusters, the tunability and orbital hybridisation of the 4f electronic structure in the Ce6 clusters modulate the electronic structure of Pd through the construction of the Ce-O-Pd interfaces. The optimal catalyst Pd/UiO-67(Ce)-bpy presented excellent low-temperature activity towards dicyclopentadiene hydrogenation with a conversion of > 99% and a selectivity of > 99% (50 °C, 10 bar). The results show that the synergy of Ce-O-Pd and Pd-N promotes the formation of active Pdδ+, which not only enhances the adsorption of H2 and electron-rich C=C bonds, but also contributes to the reduction of proton migration distance and improves proton utilization efficiency. These results provide valuable insights for investigating the regulatory role of the host MOFs, the nature of host-guest interactions, and their correlation with catalytic performance.

Key words: Interface regulation, Pdδ+, Microenvironment, Electronic state, Hydrogenation