Scalable Synthesis and Electrocatalytic Performance of Highly Fluorinated Covalent Organic Frameworks for Oxygen Reduction

Author:

Martínez‐Fernández Marcos12ORCID,Martínez‐Periñán Emiliano34ORCID,de la Peña Ruigómez Alejandro15,Cabrera‐Trujillo Jorge J.6ORCID,Navarro Jorge A. R.7ORCID,Aguilar‐Galindo Fernando48ORCID,Rodríguez‐San‐Miguel David24ORCID,Ramos Mar5ORCID,Vismara Rebecca7ORCID,Zamora Félix249ORCID,Lorenzo Encarnación3410ORCID,Segura José L.1ORCID

Affiliation:

1. Facultad de CC. Químicas Universidad Complutense de Madrid Avenida Complutense s/n 28040 Madrid Spain

2. Departamento de Inorgánica, Facultad de Ciencias Universidad Autónoma de Madrid Campus de Cantoblanco–Crta. Colmenar 28049 Madrid Spain

3. Departamento de Química Analítica y Análisis Instrumental Facultad de Ciencias Universidad Autónoma de Madrid Campus de Cantoblanco–Crta. Colmenar 28049 Madrid Spain

4. Institute for Advanced Research in Chemical Sciences (IAdChem) Universidad Autónoma de Madrid Campus de Cantoblanco 28049 Madrid Spain

5. Chemical and Environmental Technology Department Univ. Rey Juan Carlos Móstoles 28933 Madrid Spain

6. CNRS/Université de Pau et des Pays de l'Adour E2S-UPPA IPREM UMR 5254 64053 Pau Cedex 09 France

7. Departamento de Química Inorgánica Universidad de Granada Av. Fuentenueva S/N 18071 Granada Spain

8. Departamento de Química Universidad Autónoma de Madrid Campus de Cantoblanco–Crta. Colmenar 28049 Madrid Spain

9. Condensed Matter Physics Center (IFIMAC) Universidad Autónoma de Madrid Campus de Cantoblanco 28049 Madrid Spain

10. Instituto Madrileño de Estudios Avanzados en Nanociencia (IMDEA-Nanociencia) Cantoblanco 28049 Madrid Spain

Abstract

AbstractIn this study, we present a novel approach for the synthesis of covalent organic frameworks (COFs) that overcomes the common limitations of non‐scalable solvothermal procedures. Our method allows for the room‐temperature and scalable synthesis of a highly fluorinated DFTAPB‐TFTA‐COF, which exhibits intrinsic hydrophobicity. We used DFT‐based calculations to elucidate the role of the fluorine atoms in enhancing the crystallinity of the material through corrugation effects, resulting in maximized interlayer interactions, as disclosed both from PXRD structural resolution and theoretical simulations. We further investigated the electrocatalytic properties of this material towards the oxygen reduction reaction (ORR). Our results show that the fluorinated COF produces hydrogen peroxide selectively with low overpotential (0.062 V) and high turnover frequency (0.0757 s−1) without the addition of any conductive additives. These values are among the best reported for non‐pyrolyzed and metal‐free electrocatalysts. Finally, we employed DFT‐based calculations to analyse the reaction mechanism, highlighting the crucial role of the fluorine atom in the active site assembly. Our findings shed light on the potential of fluorinated COFs as promising electrocatalysts for the ORR, as well as their potential applications in other fields.

Funder

Ministerio de Ciencia e Innovación

Publisher

Wiley

Subject

General Chemistry,Catalysis

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