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February 5, 2026Journal of the American Chemical Society17 citations

Site-Specific Asymmetric Coordination Engineering in Defective Metal–Organic Frameworks Stabilizes Cu(I) Active Sites for Selective CO 2 -to-Methanol Photocatalysis

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YCYan CheDCDashu ChenBWBo Wang

Key Points

  • The research aims to enhance the photocatalytic reduction of CO2 to methanol by stabilizing Cu active sites in metal-organic frameworks.
  • Utilized defective MIL-125-NH2 modified with a flexible N-heteromacrocyclic ligand.
  • Anchored tetraxetan (DOTA) ligands to Ti-oxo clusters to repair defects.
  • Achieved Cu-DOTA chelation to stabilize single-atom Cu sites under scavenger-free conditions.
  • Conducted mechanistic studies to analyze the coordination environment effects.
  • Achieved a methanol yield of 229.0 μmol·g-1·h-1.
  • Demonstrated product selectivity of up to 95.9%.
  • Showed that asymmetric coordination promotes stable Cu(I) formation over Cu(II).
  • Lowered energy barriers for key reaction intermediates, minimizing byproduct formation.

Abstract

Solar-driven CO2 reduction by means of single-atom photocatalysis holds great promise for simultaneously addressing carbon neutrality and producing valuable chemicals. The coordination-field engineering of a single-atom (SA) site essentially provides an intriguing strategy to steer the CO2 reduction pathway. We report herein the site-specific confinement of Cu SA with an asymmetric coordination microenvironment in defective MIL-125-NH2 to facilitate photocatalytic CO2-to-CH3OH conversion. This is achieved by precisely anchoring a flexible N-heteromacrocyclic ligand of tetraxetan (DOTA) on unsaturated Ti-oxo clusters to repair the missing-linker defect in heat-treated MIL-125-NH2, followed by Cu-DOTA chelation leveraging ultrahigh formation constant to stabilize Cu SA. Under scavenger-free conditions, the photocatalyst exhibits a methanol yield of 229.0 μmol·g-1·h-1 and an excellent product selectivity of up to 95.9%. Mechanistic studies reveal that the asymmetric coordination environment promotes the formation of stable Cu(I) over Cu(II), which lowers the energy barrier of the key reaction intermediates and suppresses byproduct formation, thereby enabling high selectivity toward the product CH3OH.

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Cite This Study

Che et al. (2026) studied this question.

synapsesocial.com/papers/69843433f1d9ada3c1fb2045https://doi.org/10.1021/jacs.5c22163
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