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Published on: April 27, 2018
High-Valent NiFe Core/Porous Pyridinic N-Doped Graphitic Carbon Shell as a Robust Oxygen Electrocatalyst for High
Dong Won Kim1, Jong Hui Choi1, Seungrae Cho1
1Department of Materials Science and Engineering and NanoCentury Institute, Korea Advanced Institute of Science and Technology (KAIST), 291 Daehak-ro, Yuseong-gu, Daejeon 34141, Republic of Korea.
None:
Zinc-air batteries (ZABs) are attractive electrochemical energy storages for advanced applications across various fields, but their performance in terms of energy density and stability is tied to the efficiency and durability of a bifunctional cathode structure that governs oxygen evolution reaction (OER) during discharging and oxygen reduction reaction (ORR) during charging. Here, we present a bifunctional cathode based on a NiFe core encapsulated by a porous pyridinic N-doped graphitic carbon shell (NiFe/NC), which enables both ORR/OER for high performance in ZABs. The NC shell is rich in pyridinic/graphitic N sites and features ion-accessible pores, while the NiFe alloy core contains high-valent Ni2+/3+ and Fe2+/3+ sites. Pyridinic N sites aid in the adsorption of reduced oxygen species while suppressing H2O2 formation, graphitic N-doped sites promote electron transport, and rich pores accelerate ion transport for efficient ORR. Besides, nucleophilic Ni2+/3+ and Fe2+/3+ sites and loose NiFe packing promote OER by facilitating electron and ion transport. Moreover, the ZAB with the NiFe/NC cathode achieves a notable energy density of 879 Wh kg-1 and excellent stability over 1000 cycles without significant voltage degradation, outperforming the Pt/C+RuO2-based ZAB that delivers an energy density of 844 Wh kg-1 and degrades over 181 cycles.
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