Synergy of Paired Brønsted-Lewis Acid Sites on Defects of Zr-MIL-140A for Methanol Dehydration

Yue Xiao, Minxin Zhang, Dong Yang, Lixiong Zhang, Shangpu Zhuang, Jihai Tang, Zhuxiu Zhang, Xu Qiao

Research output: Contribution to journalArticlepeer-review

7 Scopus citations

Abstract

As a common defect-capping ligand in metal-organic frameworks (MOFs), the hydroxyl group normally exhibits Brønsted acidity or basicity, but the presence of inherent hydroxyl groups in the MOF structure makes it a great challenge to identify the exact role of defect-capping hydroxyl groups in catalysis. Herein, we used hydroxyl-free MIL-140A as the platform to generate terminal hydroxyl groups on defect sites via a continuous post-synthetic treatment. The structure and acidity of MIL-140A were properly characterized. The hydroxyl-contained MIL-140A-OH exhibited 4.6-fold higher activity than the pristine MIL-140A in methanol dehydration. Spectroscopic and computational investigations demonstrated that the reaction was initiated by the respective adsorption of two methanol molecules on the terminal-OH and the adjacent Zr vacancy. The dehydration of the adsorbed methanol molecules then occurred in the Brønsted-Lewis acid site co-participated associative pathway with the lowest energy barrier.

Original languageEnglish
Pages (from-to)34675-34681
Number of pages7
JournalACS Applied Materials and Interfaces
Volume15
Issue number29
DOIs
StatePublished - 26 Jul 2023

Keywords

  • MIL-140A
  • defect-capping hydroxyl group
  • metal−organic frameworks
  • methanol dehydration
  • synergistic catalysis

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