Controllable synthesis of Fe–N4 species for acidic oxygen reduction
Abstract Controllable design and synthesis of catalysts with the target active sites are extremely important for their applications such as for the oxygen reduction reaction (ORR) in fuel cells. However, the controllably synthesizing electrocatalysts with a single type of active site still remains a...
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doaj-fa970cd699ab4776b4d9be2ccd7883532021-06-25T18:50:38ZengWileyCarbon Energy2637-93682020-09-012345246010.1002/cey2.47Controllable synthesis of Fe–N4 species for acidic oxygen reductionXuecheng Yan0Yi Jia1Kang Wang2Zhao Jin3Chung‐Li Dong4Yu‐Cheng Huang5Jun Chen6Xiangdong Yao7Queensland Micro‐ and Nanotechnology Centre Griffith University, Nathan Campus Queensland AustraliaQueensland Micro‐ and Nanotechnology Centre Griffith University, Nathan Campus Queensland AustraliaQueensland Micro‐ and Nanotechnology Centre Griffith University, Nathan Campus Queensland AustraliaLaboratory of Advanced Power Sources, Changchun Institute of Applied Chemistry Chinese Academy of Sciences Changchun ChinaDepartment of Physics Tamkang University New Taipei City Taiwan ChinaDepartment of Physics Tamkang University New Taipei City Taiwan ChinaIntelligent Polymer Research Institute, ARC Centre of Excellence for Electromaterials Science, AIIM Facility University of Wollongong, Innovation Campus Wollongong New South Wales AustraliaQueensland Micro‐ and Nanotechnology Centre Griffith University, Nathan Campus Queensland AustraliaAbstract Controllable design and synthesis of catalysts with the target active sites are extremely important for their applications such as for the oxygen reduction reaction (ORR) in fuel cells. However, the controllably synthesizing electrocatalysts with a single type of active site still remains a grand challenge. In this study, we developed a facile and scalable method for fabricating highly efficient ORR electrocatalysts with sole atomic Fe–N4 species as the active site. Herein, the use of cost‐effective highly porous carbon as the support not only could avoid the aggregation of the atomic Fe species but also a feasible approach to reduce the catalyst cost. The obtained atomic Fe–N4 in activated carbon (aFe@AC) shows excellent ORR activity. Its half‐wave potential is 59 mV more negative but 47 mV more positive than that of the commercial Pt/C in acidic and alkaline electrolytes, respectively. The full cell performance test results show that the aFe@AC sample is a promising candidate for direct methanol fuel cells. This study provides a general method to prepare catalysts with a certain type of active site and definite numbers.https://doi.org/10.1002/cey2.47atomic Fe–N4 sitecontrollable synthesisfuel cellsoxygen reduction reaction |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Xuecheng Yan Yi Jia Kang Wang Zhao Jin Chung‐Li Dong Yu‐Cheng Huang Jun Chen Xiangdong Yao |
spellingShingle |
Xuecheng Yan Yi Jia Kang Wang Zhao Jin Chung‐Li Dong Yu‐Cheng Huang Jun Chen Xiangdong Yao Controllable synthesis of Fe–N4 species for acidic oxygen reduction Carbon Energy atomic Fe–N4 site controllable synthesis fuel cells oxygen reduction reaction |
author_facet |
Xuecheng Yan Yi Jia Kang Wang Zhao Jin Chung‐Li Dong Yu‐Cheng Huang Jun Chen Xiangdong Yao |
author_sort |
Xuecheng Yan |
title |
Controllable synthesis of Fe–N4 species for acidic oxygen reduction |
title_short |
Controllable synthesis of Fe–N4 species for acidic oxygen reduction |
title_full |
Controllable synthesis of Fe–N4 species for acidic oxygen reduction |
title_fullStr |
Controllable synthesis of Fe–N4 species for acidic oxygen reduction |
title_full_unstemmed |
Controllable synthesis of Fe–N4 species for acidic oxygen reduction |
title_sort |
controllable synthesis of fe–n4 species for acidic oxygen reduction |
publisher |
Wiley |
series |
Carbon Energy |
issn |
2637-9368 |
publishDate |
2020-09-01 |
description |
Abstract Controllable design and synthesis of catalysts with the target active sites are extremely important for their applications such as for the oxygen reduction reaction (ORR) in fuel cells. However, the controllably synthesizing electrocatalysts with a single type of active site still remains a grand challenge. In this study, we developed a facile and scalable method for fabricating highly efficient ORR electrocatalysts with sole atomic Fe–N4 species as the active site. Herein, the use of cost‐effective highly porous carbon as the support not only could avoid the aggregation of the atomic Fe species but also a feasible approach to reduce the catalyst cost. The obtained atomic Fe–N4 in activated carbon (aFe@AC) shows excellent ORR activity. Its half‐wave potential is 59 mV more negative but 47 mV more positive than that of the commercial Pt/C in acidic and alkaline electrolytes, respectively. The full cell performance test results show that the aFe@AC sample is a promising candidate for direct methanol fuel cells. This study provides a general method to prepare catalysts with a certain type of active site and definite numbers. |
topic |
atomic Fe–N4 site controllable synthesis fuel cells oxygen reduction reaction |
url |
https://doi.org/10.1002/cey2.47 |
work_keys_str_mv |
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