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Tunable Microporous Bimetallic Carboxylate-Pyrazolate Metal-Organic Frameworks for CO2 Capture

  • Aysu Yurdusen
  • , Pratibha Malik
  • , Asma Mansouri
  • , Iurii Dovgaliuk
  • , Matthew Garvin
  • , Ah-Young Song
  • , Alireza Pourghaderi
  • , Xin Jin
  • , Luke Stuart
  • , Debanjan Chakraborty
  • , Shyamapada Nandi
  • , Lokuge Aravindani Fernando
  • , Anthony Beauvois
  • , Valérie Briois
  • , Jeffrey A. Reimer
  • , Susana Garcia
  • , Berend Smit
  • , Georges Mouchaham
  • , Christian Serre

Research output: Contribution to journalArticlepeer-review

Abstract

Herein, we report two heterometallic ultramicroporous metal–organic frameworks, MIP-212(Al/Cu) and MIP-212(Al/Zn) (MIP stands for Materials from Institute of Porous Materials of Paris), synthesized via a hard–soft acid–base design strategy. In these robust pyrazolate–carboxylate architectures, pyrazolates selectively coordinate Cu2+ or Zn2+, while carboxylates bind Al3+, generating chain-based inorganic building units built up from connected M2+-pyrazolate polyhedra and μ2–OH-corner-shared AlO6 octahedra, respectively. The resulting structures feature dual ultranarrow tunnel-like pores, one decorated with μ2–OH groups. MIP-212(Al/Cu) combines pore confinement with Cu2+ open metal sites (OMS) to deliver benchmark-level CO2 uptake at low pressure (2.30 mmol g–1 at 0.15 bar, 298 K) and a CO2/N2 Ideal Adsorbed Solution Theory (IAST) selectivity of ∼30. However, the OMS also imparts marked hydrophilicity, diminishing CO2 uptake under humid conditions. Markedly, replacing octahedral Cu2+ with tetrahedral Zn2+ centers in MIP-212(Al/Zn) suppresses OMS while preserving framework topology, resulting in significantly lower water affinity (up to ca. 4-fold reduction at 0.2 bar of H2O) and superior CO2 breakthrough performance at 50% RH. These findings demonstrate that metal coordination geometry is a powerful lever to modulate hydrophilicity and sorption behavior in MOFs, enabling the rational design of sorbents for efficient CO2 capture under realistic, moisture-rich environments.

Original languageEnglish
Pages (from-to)27657-27667
Number of pages11
JournalJournal of the American Chemical Society
Volume148
Issue number26
Early online date24 Jun 2026
DOIs
Publication statusPublished - 8 Jul 2026

ASJC Scopus subject areas

  • Catalysis
  • Biochemistry
  • General Chemistry
  • Colloid and Surface Chemistry

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