Mechanistic investigation of MOF-catalyzed intramolecular hydroamination of o-alkynylanilines using Zn-UiO-67-BPY as a catalyst

Taotao Liu, Yintong Yao, Zhipeng Pei, Yuqing Jiang, Jinshuai Song, Yu Lan

Research output: Contribution to journalArticlepeer-review

Abstract

Hybrid quantum mechanics/molecular mechanics (QM/MM) calculations were used to determine the distribution of active catalytic sites in Zn-UiO-67-BPY and the mechanism behind the MOF-catalyzed intramolecular hydroamination of o-alkynylanilines. It was found computationally that the active sites were located at a distance from each other within the framework, promoting catalysis. Additionally, the fixation of Zn(ii)-bipyridine to the MOF contributed to the barrier of the rate-determining step and stabilized the transition state. The study also revealed a series of linear relationships between the NPA charge of two counterions and the calculated barrier, which displayed ladder-like changes depending on the degree of orbital overlap between the counterion and the substrate. These relationships offer valuable insights into the counterion effect in complex catalytic systems and facilitate the design of anionic heterogeneous catalysts.

Original languageEnglish
Article number10581-10588
Pages (from-to)10581-10588
Number of pages8
JournalDalton Transactions
Volume54
Issue number27
DOIs
Publication statusPublished - 21 Jul 2025

Keywords

  • quantum mechanics/molecular mechanics
  • catalysts
  • Zn-UiO-67-BPY
  • anionic heterogeneous catalysts

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