Highly Immobilized Bimetallic Fe/M‐N4 (M‐ Mg or Zn) Conductive Metal–Organic Frameworks on Nitrogen‐Doped Porous Carbon for Efficient Electrocatalytic Hydrogen Evolution and Oxygen Reduction Reactions

Author:

Nivetha Ravi1,Asrami Mahdieh Razi2,Kumar Rajeev3,Sharma Sushant14,Jourshabani Milad2,Kumar Rajaiah Dhilip2,Ravichandran Santhosh5,Lee Byeong–Kyu2,Lee Youngil36,Chung Jin Suk1,Kang Sung Gu1,Choi Won Mook1,Hur Seung Hyun1ORCID

Affiliation:

1. School of Chemical Engineering University of Ulsan Daehak‐ro 93, Nam‐gu Ulsan 44610 South Korea

2. Department of Civil and Environment Engineering University of Ulsan Daehakro 93, Namgu Ulsan 680–749 Republic of Korea

3. Chemical Industry Research Institution Core Research Institute University of Ulsan Ulsan 44776 Republic of Korea

4. Department of Material Science and Chemical Engineering Hanyang University Ansan Gyeonggi‐do 15588 Republic of Korea

5. Nanoscience and Nanotechnology Program Cinvestav Ramos Arizpe Coahuila 25900 Mexico

6. Department of Chemistry University of Ulsan Ulsan 44776 Republic of Korea

Abstract

Herein, a simple method is proposed for developing bimetallic Fe/M‐N4/nitrogen‐doped porous carbon (NPC) (M‐Zn or Mg) conductive metal–organic framework (c‐MOF) composites because of their great potential in replacing conventional catalysts. The prepared composite MOF exhibits remarkable catalytic activity for both hydrogen evolution reaction (HER) and oxygen reduction reaction (ORR), surpassing the performance of the state‐of‐the‐art transition metal‐N4 cathode catalysts. These composites demonstrate excellent selectivity for a four‐electron transfer, facilitated by an associative reaction pathway that functions as the rate‐determining step. Therefore, they offer high half‐wave and onset potential values for ORR, i.e., 0.92 and 1.02 V for Fe/Mg‐N4‐NPC (hexaminobenzene (HAB)‐3@NPC) at a current density of 4.11 mA cm−2, and 0.89 and 0.99 V for Fe/Zn‐N4‐NPC (HAB‐2@NPC) at a current density of 3.8 mA cm−2, respectively. In addition, they provide low overpotentials of 21 and 64 mV at the current density of 10 mA cm−2 with Tafel slopes of 47.9 and 34.2 mV dec−1 for HER, respectively. Furthermore, when utilized as the cathode in bifunctional electrode assembly cells, they provide low cell voltages of 1.412 V at a current density of 20mA cm−2. In the membrane electrode assembly, the HAB‐3@NPC composite demonstrates an optimal power density of 0.861 Wcm−2, thus underscoring its potential in practical applications.

Publisher

Wiley

Subject

General Earth and Planetary Sciences,General Environmental Science

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