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Vapor-Phase Fabrication and Condensed-Phase Application of a MOF-Node-Supported Iron Thiolate Photocatalyst for Nitrate Conversion to Ammonium

  • Hyeju Choi
  • , Aaron W. Peters
  • , Hyunho Noh
  • , Leighanne C. Gallington
  • , Ana E. Platero-Prats
  • , Matthew R. Destefano
  • , Martino Rimoldi
  • , Subhadip Goswami
  • , Karena W. Chapman
  • , Omar K. Farha
  • , Joseph T. Hupp
  • Northwestern University
  • United States Department of Energy

Research output: Contribution to journalArticlepeer-review

42 Scopus citations

Abstract

We describe a method for synthesizing a nitrate reduction catalyst within a metal-organic framework (MOF). The MOF NU-1000, a zirconium-based mesoporous material, is exposed by using atomic layer deposition (ALD) to a vaporous iron amidinate coordination complex and subsequently a dodecanethiol ligand to synthesize an iron thiolate cluster grafted on the zirconium oxide nodes. Structural identification of the cluster is conducted through X-ray absorption spectroscopy (XAS) and differential envelope density (DED) analyses. Once submerged in an aqueous solution containing nitrate (30 ppm of N) and irradiated with light, the MOF/iron thiolate cluster assembly can photochemically transform the nitrate to ammonium ions. We suggest that sequential, self-limiting, atomic (metal ion), and molecular (ligand) deposition onto the reactive nodes of chemically and thermally stable MOFs could prove to be a versatile and attractive method for obtaining nature-inspired chemical catalysts.

Original languageEnglish
Pages (from-to)8695-8700
Number of pages6
JournalACS Applied Energy Materials
Volume2
Issue number12
DOIs
StatePublished - Dec 23 2019

Keywords

  • ammonia synthesis
  • metal chalcogenide-based catalyst
  • metal-organic framework
  • molecular layer deposition
  • nitrate photoreduction

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