Enhanced Solar CO2 Photoreduction to Formic Acid by Platinum Immobilization on Bipyridine Covalent Triazine Framework with Defects

Author:

Kaya Kerem12,Ditz Daniel3,Jaworski Aleksander4,Chen Jianhong4,Monti Susanna5,Barcaro Giovanni6,Budnyk Serhiy7,Slabon Adam8ORCID,Palkovits Regina39

Affiliation:

1. Department of Chemistry Istanbul Technical University Istanbul 34469 Turkey

2. Department of Environmental Chemistry (MMK) Stockholm University Stockholm 10691 Sweden

3. RWTH Aachen University Institute of Technical and Macromolecular Chemistry 52074 Aachen Germany

4. Department of Materials and Environmental Chemistry (MMK) Stockholm University Stockholm 10691 Sweden

5. CNR‐ICCOM Institute of Organometallic Compounds Pisa 56124 Italy

6. CNR‐IPCF Institute of Chemical and Physical Processes Pisa 56124 Italy

7. AC2T research GmbH Wiener Neustadt 2700 Austria

8. Chair of Inorganic Chemistry University of Wuppertal 42119 Wuppertal Germany

9. Max‐Planck Institute for Chemical Energy Conversion 45470 Mülheim an der Ruhr Germany

Abstract

AbstractThe immobilization and structural analysis of platinum nanoparticles on a nitrogen‐rich, bipyridine‐containing covalent triazine framework (bpyCTF) having structural defects are disclosed by taking advantage of 15N solid‐state nuclear magnetic resonance measurements at natural 15N isotope abundance and X‐ray photoelectron spectroscopic analyses. The photocatalyst (Pt@bpyCTF) with structural defects reduces CO2 to formic acid (FA) at a rate of 152 µmol h−1g−1 and a selectivity higher than 95% over CO and H2 in water under simulated solar light. The presence of amine defects and the immobilization of Pt cause improvement in the photocurrent density and CO2 capture capacity (≈8% by weight) despite the moderate surface area (0.54 cm3 g−1)of the photocatalyst. Theoretical models and density functional theory calculations are employed to investigate the possible CO2 reduction reaction (CO2RR) mechanisms. Considering the exceptional CO2 capture capacity and high FA production using only CO2‐bubbled water, this work highlights the great potential of nitrogen‐rich CTFs for photocatalyzed CO2RRs under green conditions.

Funder

Deutsche Forschungsgemeinschaft

Österreichische Forschungsförderungsgesellschaft

Stiftelsen Olle Engkvist Byggmästare

Publisher

Wiley

Subject

General Environmental Science,Renewable Energy, Sustainability and the Environment

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