Publication detail

Fe-MOF Catalytic Nanoarchitectonic toward Electrochemical Ammonia Production

KANDAMBATH PADINJAREVEETIL, A. PERALES RONDON, J. ZAORALOVÁ, D. OTYEPKA, M. ALDUHAISH, O. PUMERA, M.

Original Title

Fe-MOF Catalytic Nanoarchitectonic toward Electrochemical Ammonia Production

Type

journal article in Web of Science

Language

English

Original Abstract

Electrochemical reduction of nitrate into ammonia has lately been identified as one among the promising solutions to address the challenges triggered by the growing global energy demand. Exploring newer electrocatalyst materials is vital to make this process effective and feasible. Recently, metal-organic framework (MOF)-based catalysts are being well investigated for electrocatalytic ammonia synthesis, accounting for their enhanced structural and compositional integrity during catalytic reduction reactions. In this study, we investigate the ability of the PCN-250-Fe-3 MOF toward ammonia production in its pristine and activated forms. The activated MOF catalyst delivered a faradaic efficiency of about 90% at -1 V vs RHE and a yield rate of 2.5 x 10(-4) mol cm(-2) h(-1), while the pristine catalyst delivered a 60% faradaic efficiency at the same potential. Theoretical studies further provide insights into the nitrate reduction reaction mechanism catalyzed by the PCN-250-Fe-3 MOF catalyst. In short, simpler and cost-effective strategies such as pretreatment of electrocatalysts have an upper hand in aggravating the intrinsic material properties, for catalytic applications, when compared to conventional material modification approaches.

Keywords

metal-organic framework; PCN-250-Fe-3; ammonia synthesis; thermal activation; electrochemical nitrate reduction; electrocatalysts

Authors

KANDAMBATH PADINJAREVEETIL, A.; PERALES RONDON, J.; ZAORALOVÁ, D.; OTYEPKA, M.; ALDUHAISH, O.; PUMERA, M.

Released

2. 10. 2023

Publisher

American Chemical Society

Location

WASHINGTON

ISBN

1944-8252

Periodical

ACS applied materials & interfaces

Year of study

15

Number

40

State

United States of America

Pages from

47294

Pages to

47306

Pages count

13

URL

Full text in the Digital Library

BibTex

@article{BUT186968,
  author="Akshay Kumar {Kandambath Padinjareveetil} and Juan Victor {Perales Rondon} and Dagmar {Zaoralová} and Michal {Otyepka} and Osamah {Alduhaish} and Martin {Pumera}",
  title="Fe-MOF Catalytic Nanoarchitectonic toward Electrochemical Ammonia Production",
  journal="ACS applied materials & interfaces",
  year="2023",
  volume="15",
  number="40",
  pages="47294--47306",
  doi="10.1021/acsami.3c12822",
  issn="1944-8252",
  url="https://pubs.acs.org/doi/10.1021/acsami.3c12822"
}