Highly dispersed WOm enables efficient reductive debenzylation of hexabenzylhexaazaisowurtzitane (HBIW) over bifunctional Pd-WOm/CeO2

Qing Shan Niu, Yi Ran Du*, Xin Peng Guo, Jing Wen Sun, Si Ping Pang, Bao Hua Xu

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

The Pd-catalyzed N-debenzylation of hexabenzylhexaazaisowurtzitane (HBIW) to tetraacetyldibenzylhexaazaisowurtzitane (TADBIW) has provided high yields (up to 90.0 %, 12 h) in batch reactors, however, several phase transition stages during the catalytic process disable the development of a continuous flow system. In this work, we designed Pd-WOm bifunctional catalysts (Pd-WOm/MOn) for such a transformation under three-phase reaction conditions with high efficiency. Remarkably, TADBIW was obtained with a high yield of 82.5 % upon reacting for 6 h at 40 °C on Pd-WOm(5.0)/CeO2 (Pd: 1.33 mol%). Experimental studies combined with theoretical analysis reveal the HBIW-to-TADBIW conversion is a stepwise hydrogenolysis-acetyldebenzylation process, wherein the initial hydrogenolysis of Ac2O turn over the catalysis. Importantly, the presence of highly dispersed WOm domains with proper size not only facilitates hydrogen spillover from Pd site to the adsorpted Ac2O but also accelerates the subsequent dissociation of *Ac2O(H), enabling reduction of the overall energy barrier for debenzylation.

Original languageEnglish
Article number159366
JournalChemical Engineering Journal
Volume505
DOIs
Publication statusPublished - 1 Feb 2025

Keywords

  • Bifunctional catalyst
  • HBIW
  • N-debenzylation
  • Pd catalysis
  • Three-phase reaction

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