Triggering C‒N Coupling on Metal Oxide Nanocomposite for the Electrochemical Reduction of CO2 and NOx⁻ to Formamide

Author:

Ramadhany Putri1,Trần‐Phú Thành2,Yuwono Jodie A.3,Ma Zhipeng1,Han Chen1,Nguyen Thi Kim Anh4,Leverett Josh1,Kumar Priyank1,Hocking Rosalie K.5,Tricoli Antonio4,Simonov Alexandr N.6,Amal Rose1,Daiyan Rahman7ORCID

Affiliation:

1. Particles and Catalysis Research Laboratories and School of Chemical Engineering UNSW Sydney Sydney NSW 2052 Australia

2. Chemistry and Nanoscience Center National Renewable Energy Laboratory Golden CO 80401 USA

3. School of Chemical Engineering The University of Adelaide Adelaide SA 5005 Australia

4. Nanotechnology Research Laboratory The Sydney University Sydney NSW 2050 Australia

5. School of Science Swinburne University of Technology Melbourne VIC 3122 Australia

6. School of Chemistry Monash University Melbourne VIC 3800 Australia

7. Particles and Catalysis Research Laboratories and School of Minerals and Energy Resources Engineering UNSW Sydney Sydney NSW 2052 Australia

Abstract

AbstractThe co‐electroreduction of CO2 and NOx⁻ (NO3⁻/NO2⁻) to generate formamide (HCONH2) offers an opportunity for downstream chemical and polymer manufacturing decarbonization; however, significant challenges lie in the C‒N coupling and the associated low product selectivity. Herein, p‐block metal oxides are incorporated in copper oxides to provide more accessible active sites for reactant adsorption and activation, tuning the reaction selectivity toward the formamide production. Through in situ Raman and synchrotron‐based infrared spectroscopy measurements, C─N bond formation is demonstrated in real‐time with the CuOx/BiOx catalyst, where the C─N bond is detected via a *CHO and *NH2 intermediates formation, in agreement with the density functional theory calculations. When tested in a flow electrolyzer, a formamide yield rate of 134 ± 11 mmol h−1 gcat−1 is reported, the first report of co‐electroreduction of CO2 and NOx⁻ to formamide beyond conventional H‐cell measurements. These new insights on the C‒N coupling mechanisms and scale‐up capability provide directions for further development of electrocatalysts for the formamide production.

Funder

Australian Research Council

Lembaga Pengelola Dana Pendidikan

Publisher

Wiley

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