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The On/Off pH-Dependent Electrocatalytic Activity of the Perfluorinated Iron Phthalocyanine for the Oxygen Reduction Reaction and Electrochemical Hardness as a Reactivity Descriptor: Experimental and Theoretical Study
Indexado
Scopus SCOPUS_ID:85212980808
DOI 10.1021/ACSCATAL.4C06957
Año 2025
Tipo

Citas Totales

Autores Afiliación Chile

Instituciones Chile

% Participación
Internacional

Autores
Afiliación Extranjera

Instituciones
Extranjeras


Abstract



Perfluorinated iron phthalocyanine 16(F)FePc is probably the most active MN4 molecular catalyst reported to promote the oxygen reduction reaction (ORR) in alkaline media. Its high activity is attributed to the electron-withdrawing properties of the fluoro substituents, which promote a hard-iron active site to interact with a hard-O2 molecule. However, its activity has been explored shallowly. Here, we modified an edge plane-pyrolytic graphite surface (EPG) with 16(F)FePc to promote ORR in different pH media to build a Pourbaix diagram as an electrocatalytic roadmap for 16(F)FePc. Furthermore, the recently proposed reactivity descriptor for ORR, known as the “electrochemical hardness” (ΔEh), was determined in the EPG/16(F)FePc system at different pH. It was found that the catalyst’s reactivity is inversely proportional to the ΔEh values, so small values conduct to high activity. The same behavior was obtained for the oxidation-reduction hardness (ηox-red) parameter, which was theoretically determined in this work by DFT calculations. The theoretical ηox-red suggests a decrease of the Fe(II) reactivity with the increase of nitrogen atom protonation in the 16(F)FePc, supporting the pH-dependent ΔEh values. Moreover, a pH-dependent locked/unlocked mechanical switch behavior for the 16(F)FePc was determined, attributed to the iron center motion above the N4-plane without a demetalation process. We observed this phenomenon in an acid media using electrochemical techniques coupled with Surface-Enhanced Raman Spectroscopy (EC-SERS), monitoring the Fe(II)/(I), Fe(III)/(II) redox potentials, and the in situ ORR process. The scanning tunneling microscopy-based break junction technique (STM-BJ) revealed this mechanical switch at the single-molecule level. Conversely, the mechanical switch is locked in alkaline media, and the 16(F)FePc is in an on-catalytic state for ORR. Therefore, the unlocked mechanical switch could explain the low ORR catalytic activity of the 16(F)FePc in acidic media (off-catalytic state). These findings are crucial for understanding the catalytic behavior of 16(F)FePc, especially in acid media.

Revista



Revista ISSN
Acs Catalysis 2155-5435

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Disciplinas de Investigación



WOS
Chemistry, Physical
Scopus
Sin Disciplinas
SciELO
Sin Disciplinas

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Publicaciones WoS (Ediciones: ISSHP, ISTP, AHCI, SSCI, SCI), Scopus, SciELO Chile.

Colaboración Institucional



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Autores - Afiliación



Ord. Autor Género Institución - País
1 Acuña-Saavedra, Luis - Universidad de Santiago de Chile - Chile
2 Méndez-Torres, Ana María - Universidad de Santiago de Chile - Chile
3 Cárdenas-Jirón, Gloria - Universidad de Santiago de Chile - Chile
4 Oñate, Rubén - Universidad de Santiago de Chile - Chile
5 Sánchez-Allende, Benjamín - Universidad de Santiago de Chile - Chile
6 Venegas, Ricardo - Universidad de Santiago de Chile - Chile
7 Bernal, Roberto - Universidad de Santiago de Chile - Chile
SMAT-C - Chile
8 Melo, Francisco - Universidad de Santiago de Chile - Chile
SMAT-C - Chile
9 Imbarack, Elizabeth - Universidad de Santiago de Chile - Chile
SMAT-C - Chile
10 Zagal, José H. - Universidad de Santiago de Chile - Chile
11 Ponce, Ingrid - Universidad de Santiago de Chile - Chile

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Financiamiento



Fuente
FONDEQUIP
Fondo Nacional de Desarrollo Científico y Tecnológico
Departamento de Investigaciones Científicas y Tecnológicas, Universidad de Santiago de Chile
DOCTORADO
ANID Fondecyt
ANID-Subdirección de Capital Humano

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Agradecimientos



Agradecimiento
This research has been supported by ANID FONDECYT Regular projects 1211351, 1221798, and 1221072. ANID FONDECYT postdoctoral 3220728, ANID-Subdireccio\u0301n de Capital Humano/Doctorado Nacional/2024-21241434. Proyecto AYUDANTE_DICYT, 022441PH, Vicerrectori\u0301a de Investigacio\u0301n Innovacio\u0301n y Creacio\u0301n. FONDEQUIP EQM-230061. We are most grateful to Professor Latha Venkataraman from Columbia University for her exceptional contribution to the development of the STM Break-Junction Setup at the University of Santiago de Chile. Powered@NLHPC: This research was partially supported by the NLHPC (ECM-02) supercomputing infrastructure of the University of Chile.

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