High‐Temperature Air Synthesis: A Facile Approach to Nitrogen‐Doped, Metal‐Free Carbon Electrocatalysts

Author:

Etesami Mohammad1,Khezri Ramin1,Rezaei Motlagh Shiva1,Gopalakrishnan Mohan1,Thanh Nguyen Mai2,Yonezawa Tetsu2,Wannapaiboon Suttipong3,Nootong Kasidit14,Somwangthanaroj Anongnat14,Kheawhom Soorathep145ORCID

Affiliation:

1. Department of Chemical Engineering Faculty of Engineering Chulalongkorn University Bangkok 10330 Thailand

2. Division of Materials Science and Engineering Faculty of Engineering Hokkaido University Hokkaido 060-8628 Japan

3. Synchrotron Light Research Institute 111 University Avenue Muang District Nakhon Ratchasima 30000 Thailand

4. Bio-Circular-Green-economy Technology & Engineering Center (BCGeTEC) Faculty of Engineering Chulalongkorn University Bangkok 10330 Thailand

5. Center of Excellence on Advanced Materials for Energy Storage Chulalongkorn University Bangkok 10330 Thailand

Abstract

AbstractThis study presents a novel, straightforward method for synthesizing hierarchical nitrogen‐doped carbon structures, positioning metal‐free, carbon‐based materials as potential substitutes in electrochemical reactions such as oxygen reduction reaction (ORR) and hydrogen evolution reaction (HER). The unique method involves a single‐step pyrolysis process in an air atmosphere, eliminating the need for an inert atmosphere and pre‐treatment procedures. It enables simultaneous self‐templating and heteroatom doping, resulting in oxygen‐rich functional groups embedded in the nitrogen‐doped carbon structure. We also crafted a carbon structure without heteroatom doping, comparing its electrochemical performance in ORR and HER. Our findings indicate that carbon catalysts pyrolyzed at higher temperatures have more pyridinic N, functional groups, and active sites‐ factors conducive to electrochemical reactions. We tested the air‐synthesized electrocatalysts for ORR in alkaline electrolyte and employed the optimized nitrogen‐doped carbon catalyst, pyrolyzed at 700 °C in an air atmosphere, as cathode material in a zinc‐air battery. This catalyst demonstrated ORR performance comparable to the commercial Pt/C catalyst and showed minimal overpotential in acidic HER. Our research establishes a pioneering technique for synthesizing porous, metal‐free, nitrogen‐doped carbon materials, paving the way for potential energy applications.

Publisher

Wiley

Subject

Inorganic Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Catalysis

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