Highly Active and Durable Transition Metal-Coordinated Nitrogen Doped Carbon Electrocatalyst for Oxygen Reduction Reaction in Neutral Media

The major technical obstacles in commercialization of microbial fuel cell technology are the sluggish kinetic, high cost, and poor durability of an air cathode electrocatalyst. This research aimed to synthesize the highly active, stable and low cost non-precious metal catalyst to replace the expensi...

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Main Authors: Ketpang Kriangsak, Boonkitkoson Apikom, Pitipuech Nattawan, Poompipatpong Chedthawut, Sanetuntikul Jakkid, Shanmugam Sangaraju
Format: Article
Language:English
Published: EDP Sciences 2020-01-01
Series:E3S Web of Conferences
Online Access:https://www.e3s-conferences.org/articles/e3sconf/pdf/2020/01/e3sconf_ri2c2019_01005.pdf
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spelling doaj-706cf72f29c544ad880b97d93c4bc8372021-02-02T07:17:40ZengEDP SciencesE3S Web of Conferences2267-12422020-01-011410100510.1051/e3sconf/202014101005e3sconf_ri2c2019_01005Highly Active and Durable Transition Metal-Coordinated Nitrogen Doped Carbon Electrocatalyst for Oxygen Reduction Reaction in Neutral MediaKetpang KriangsakBoonkitkoson ApikomPitipuech NattawanPoompipatpong ChedthawutSanetuntikul JakkidShanmugam SangarajuThe major technical obstacles in commercialization of microbial fuel cell technology are the sluggish kinetic, high cost, and poor durability of an air cathode electrocatalyst. This research aimed to synthesize the highly active, stable and low cost non-precious metal catalyst to replace the expensive Pt electrocatalyst using a simple, low cost and scalable method. The Fe3C and Fe-N-C catalysts were prepared by direct heating the precursors under autogenic pressure conditions. X-ray diffraction pattern revealed the phase of Fe3C sample was cohenite Fe3C and graphitic carbon, while the phase of Fe-N-C catalyst was only graphitic carbon. The morphology of the synthesized catalysts was a highly porous structure with nanoparticle morphology. The surface area of the Fe3C and the Fe-N-C catalysts was 295 and 377 m2 g-1, respectively. The oxygen reduction reaction (ORR) activity of Fe-N-C catalyst was more active than Fe3C catalyst. The ORR performance of Fe-N-C catalyst exhibited about 1.6 times more superior to that of the noble Pt/C catalyst. In addition, the Fe-N-C catalyst was durable to operate under neutral media. Thus, a novel autogenic pressure technique was a promising method to effectively prepare an highly active and durable non-precious metal catalyst to replace the precious Pt/C catalyst.https://www.e3s-conferences.org/articles/e3sconf/pdf/2020/01/e3sconf_ri2c2019_01005.pdf
collection DOAJ
language English
format Article
sources DOAJ
author Ketpang Kriangsak
Boonkitkoson Apikom
Pitipuech Nattawan
Poompipatpong Chedthawut
Sanetuntikul Jakkid
Shanmugam Sangaraju
spellingShingle Ketpang Kriangsak
Boonkitkoson Apikom
Pitipuech Nattawan
Poompipatpong Chedthawut
Sanetuntikul Jakkid
Shanmugam Sangaraju
Highly Active and Durable Transition Metal-Coordinated Nitrogen Doped Carbon Electrocatalyst for Oxygen Reduction Reaction in Neutral Media
E3S Web of Conferences
author_facet Ketpang Kriangsak
Boonkitkoson Apikom
Pitipuech Nattawan
Poompipatpong Chedthawut
Sanetuntikul Jakkid
Shanmugam Sangaraju
author_sort Ketpang Kriangsak
title Highly Active and Durable Transition Metal-Coordinated Nitrogen Doped Carbon Electrocatalyst for Oxygen Reduction Reaction in Neutral Media
title_short Highly Active and Durable Transition Metal-Coordinated Nitrogen Doped Carbon Electrocatalyst for Oxygen Reduction Reaction in Neutral Media
title_full Highly Active and Durable Transition Metal-Coordinated Nitrogen Doped Carbon Electrocatalyst for Oxygen Reduction Reaction in Neutral Media
title_fullStr Highly Active and Durable Transition Metal-Coordinated Nitrogen Doped Carbon Electrocatalyst for Oxygen Reduction Reaction in Neutral Media
title_full_unstemmed Highly Active and Durable Transition Metal-Coordinated Nitrogen Doped Carbon Electrocatalyst for Oxygen Reduction Reaction in Neutral Media
title_sort highly active and durable transition metal-coordinated nitrogen doped carbon electrocatalyst for oxygen reduction reaction in neutral media
publisher EDP Sciences
series E3S Web of Conferences
issn 2267-1242
publishDate 2020-01-01
description The major technical obstacles in commercialization of microbial fuel cell technology are the sluggish kinetic, high cost, and poor durability of an air cathode electrocatalyst. This research aimed to synthesize the highly active, stable and low cost non-precious metal catalyst to replace the expensive Pt electrocatalyst using a simple, low cost and scalable method. The Fe3C and Fe-N-C catalysts were prepared by direct heating the precursors under autogenic pressure conditions. X-ray diffraction pattern revealed the phase of Fe3C sample was cohenite Fe3C and graphitic carbon, while the phase of Fe-N-C catalyst was only graphitic carbon. The morphology of the synthesized catalysts was a highly porous structure with nanoparticle morphology. The surface area of the Fe3C and the Fe-N-C catalysts was 295 and 377 m2 g-1, respectively. The oxygen reduction reaction (ORR) activity of Fe-N-C catalyst was more active than Fe3C catalyst. The ORR performance of Fe-N-C catalyst exhibited about 1.6 times more superior to that of the noble Pt/C catalyst. In addition, the Fe-N-C catalyst was durable to operate under neutral media. Thus, a novel autogenic pressure technique was a promising method to effectively prepare an highly active and durable non-precious metal catalyst to replace the precious Pt/C catalyst.
url https://www.e3s-conferences.org/articles/e3sconf/pdf/2020/01/e3sconf_ri2c2019_01005.pdf
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