| Literature DB >> 34143611 |
Ki Ro Yoon1,2, Chang-Kyu Hwang1,2,3, Seung-Hoon Kim2,4, Ji-Won Jung5, Ji Eon Chae2, Jun Kim2, Kyung Ah Lee2, Ahyoun Lim2, Su-Ho Cho6, Jitendra Pal Singh7, Jong Min Kim2, Kihyun Shin8, Byung Moo Moon3, Hyun S Park2, Hyoung-Juhn Kim2, Keun Hwa Chae7, Hyung Chul Ham9, Il-Doo Kim6, Jin Young Kim2.
Abstract
Oxygen-based electrocatalysis is an integral aspect of a clean and sustainable energy conversion/storage system. The development of economic bifunctional electrocatalysts with high activity and durability during reversible reactions remains a great challenge. The tailored porous structure and separately presented active sites for oxygen reduction and oxygen evolution reactions (ORR and OER) without mutual interference are most crucial for achieving desired bifunctional catalysts. Here, we report a hybrid composed of sheath-core cobalt oxynitride (CoOx@CoNy) nanorods grown perpendicularly on N-doped carbon nanofiber (NCNF). The brush-like CoOx@CoNy nanorods, composed of metallic Co4N cores and oxidized surfaces, exhibit excellent OER activity (E = 1.69 V at 10 mA cm-2) in an alkaline medium. Although pristine NCNF or CoOx@CoNy alone had poor catalytic activity in the ORR, the hybrid showed dramatically enhanced ORR performance (E = 0.78 V at -3 mA cm-2). The experimental results coupled with a density functional theory (DFT) simulation confirmed that the broad surface area of the CoOx@CoNy nanorods with an oxidized skin layer boosts the catalytic OER, while the facile adsorption of ORR intermediates and a rapid interfacial charge transfer occur at the interface between the CoOx@CoNy nanorods and the electrically conductive NCNF. Furthermore, it was found that the independent catalytic active sites in the CoOx@CoNy/NCNF catalyst are continuously regenerated and sustained without mutual interference during the round-trip ORR/OER, affording stable operation of Zn-air batteries.Entities:
Keywords: bifunctional catalysts; carbon nanofibers; cobalt oxynitrides; oxygen evolution reaction; oxygen reduction reaction
Year: 2021 PMID: 34143611 DOI: 10.1021/acsnano.0c09905
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881