电催化剂
材料科学
析氧
氧气
金属
化学物理
磷酸盐
氧还原
无机化学
纳米技术
化学工程
物理化学
电化学
冶金
化学
电极
生物化学
有机化学
工程类
作者
Sampath Gayathri,Paulraj Arunkumar,Dipankar Saha,Durga P. Acharya,J. Karthikeyan,Jong Hun Han
标识
DOI:10.1002/adfm.202416834
摘要
Abstract Engineering metal‐oxygen (M‒O) interactions for catalyzing oxygen evolution reaction (OER) by tuning the coordination geometry of metal sites is crucial for improving catalytic performance, which remains unexplored, especially in structurally diverse phosphate‐based catalysts. Herein, two NaCoPO 4 (NCP) polymorphs with distinct metal coordinations: orthorhombic‐ Pnma (CoO 6 ) and hexagonal‐P 6 5 (CoO 4 ) denoted as O‐NCP and H‐NCP, respectively are synthesized through unique quenching‐based synthesis, to investigate the impact of coordination geometry on M‒O covalency and OER performance. The CoO 4 (H‐NCP) polymorph delivered superior OER activity with low overpotential at 10 mA cm −2 (η 10 = 303 mV) and long‐term stability than CoO 6 ‐based O‐NCP. Spectroscopic and computational studies linked the superior activity of CoO 4 to higher Co‒O covalency, enhanced metal electronic states near the Fermi level, and improved electrochemical reconstruction. Further, M‒O covalency regulated OER mechanism, where high‐covalent CoO 4 follows conventional concerted proton‐electron transfer pathway, while CoO 6 entails a non‐concerted pathway, where the lattice oxygen participation remains unfavorable due to downshifted O 2p band center. Further, OER‐active tetrahedral metal is demonstrated in a high‐entropy catalyst requiring lower η 10 of ≈284 mV. This study unlocks a unique strategy for designing next‐generation OER catalysts with superior activity and durability, harnessing the interplay between metal coordination and metal‐oxygen covalency.
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