Boron and Fluorine Co‐Doped Graphene/Few‐Walled Carbon Nanotube Composite as Highly Active Electrocatalyst for Oxygen Reduction Reaction

Author:

Raudsepp Ragle1ORCID,Türk Karl‐Kalev1,Zarmehri Ehsan2ORCID,Joost Urmas3ORCID,Rauwel Protima3ORCID,Saar Rando3,Mäeorg Uno1ORCID,Dyck Alexander4ORCID,Bron Michael5ORCID,Chen Zhongming6,Noda Suguru6ORCID,Kruusenberg Ivar1ORCID,Tammeveski Kaido1ORCID

Affiliation:

1. Institute of Chemistry University of Tartu Ravila 14a 50411 Tartu Estonia

2. National Institute of Chemical Physics and Biophysics Akadeemia tee 23 12618 Tallinn Estonia

3. Institute of Physics University of Tartu W. Ostwald Str. 1 50411 Tartu Estonia

4. DLR-Institut für Vernetzte Energiesysteme e.sa V. Urban and Residential Technologies Carl-von Ossietzky-Str. 15 26129 Oldenburg Germany

5. Martin-Luther-Universität Halle-Wittenberg Naturwissenschaftliche Fakultät II Institut für Chemie von-Danckelmann-Platz 4 06120 Halle (Saale) Germany

6. Department of Applied Chemistry Waseda University 3-4-1 Okubo Shinjuku-ku Tokyo 169-8555 Japan

Abstract

AbstractFunctionalization of nanocarbon materials with heteroatoms is of paramount interest as doping of carbon with electron withdrawing groups results in change of electrochemical properties of the potential catalyst. Adding fluorine, as the most electronegative element into the doping process next to boron is expected to have significant effect on the design of novel nanocarbon‐based electrocatalysts. In this paper boron and fluorine co‐doped reduced graphene oxide/few‐walled carbon nanotube (BF‐rGO/FWCNT) catalysts are synthesized via simple and low‐cost direct pyrolysis method using boron trifluoride diethyl etherate (BTDE). Composition analysis confirmed that boron and fluorine have been grafted onto the carbon support. Rotating disk electrode (RDE) measurements revealed that BF‐rGO/FWCNT has remarkable electrocatalytic activity toward the oxygen reduction reaction (ORR) both in alkaline and acid media. The onset potential of the best BF‐rGO/FWCNT catalyst was 50 mV more positive in alkaline and 600 mV more positive in acidic media compared with un‐doped rGO/FWCNT. The half‐wave potential was 100 mV more positive in alkaline media and 700 mV more positive in acidic media in comparison with un‐doped rGO/FWCNT.

Funder

Eesti Teadusagentuur

European Regional Development Fund

Publisher

Wiley

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