The Emergence of 2D Building Units in Metal‐Organic Frameworks for Photocatalytic Hydrogen Evolution: A Case Study with COK‐47

Author:

Ayala Pablo1ORCID,Naghdi Shaghayegh1,Nandan Sreejith P.1,Myakala Stephen Nagaraju1,Rath Jakob1,Saito Hikaru2,Guggenberger Patrick34,Lakhanlal Lakhanlal5,Kleitz Freddy3,Toroker Maytal Caspary56,Cherevan Alexey1,Eder Dominik1ORCID

Affiliation:

1. Institute of Materials Chemistry TU Wien Vienna 1060 Austria

2. Institute of Materials Chemistry and Engineering Kyushu University Fukuoka 816–8580 Japan

3. Department of Inorganic Chemistry – Functional Materials Faculty of Chemistry University of Vienna Vienna 1090 Austria

4. Vienna Doctoral School in Chemistry (DoSChem) University of Vienna Vienna 1090 Austria

5. Department of Materials Science and Engineering Technion – Israel Institute of Technology Haifa 3200003 Israel

6. The Nancy and Stephen Grand Technion Energy Program Technion – Israel Institute of Technology Haifa 3200003 Israel

Abstract

AbstractMetal‐organic frameworks (MOFs) are promising materials for photocatalytic water splitting reactions, but examples of visible light‐responsive, catalytically active, and stable MOFs are still rare. A detailed investigation is conducted for COK‐47 – a recently described MOF comprising 2D Ti‐O6 secondary building units (SBUs) – toward a photocatalytic hydrogen evolution reaction (HER), showing how overall particle morphology, surface area, and missing ligand defects are central parameters governing the material's ultimate performance. The newly synthesized COK‐47ISO is among the most active MOFs to date, yielding HER‐rates of 8.6 µmol h−1, and an apparent quantum yield (AQY) of 0.5% under visible light illumination. Optoelectronic and photoluminescence investigations, supported by theoretical calculations, enable the unraveling of its electronic structure along with charge transfer and recombination kinetics. A wavelength‐dependent reaction mechanism is proposed involving ligand to metal charge transfer (LMCT) and the main challenges for visible or UV photoexcitation are identified, demonstrating that the unique 2D layered structure aids charge separation and is key to the high performance. This work introduces COK‐47 as a promising alternative to the well‐known MIL‐125 family and offers directions for future studies

Funder

Austrian Science Fund

Publisher

Wiley

Subject

General Materials Science,Renewable Energy, Sustainability and the Environment

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