Ruthenium Engineered A2B2O6‐Hybrid Columbite Ferrite for Bifunctional pH‐Universal Water Splitting

Author:

Bacirhonde Patrick M.12ORCID,Mohamed Ahmed Yousef3,Han Byounggun3,Cho Deok‐Yong3ORCID,Devendra Shrestha1,Choi Jong‐Won4,Lim Che‐Ryong4,Afranie Emmanuel O.5,Baik Kyeong‐Ho5,Kang Kyoungin1,Lee Sunny1,Jeong Eun‐Suk6,Komalla Nikhil7ORCID,Dzade Nelson Y.7ORCID,Park Chan Hee8ORCID,Kim Cheol Sang18

Affiliation:

1. Department of Bionanotechnology and Bioconvergence Engineering Graduate School Jeonbuk National University Jeonju 54896 Republic of Korea

2. Department of Geology and Mining Exploration University of Goma Goma 204 Congo

3. IPIT & Department of Physics Jeonbuk National University Jeonju 54896 Republic of Korea

4. Division of Semiconductor and Chemical Engineering Jeonbuk National University Jeonju 54896 Republic of Korea

5. Department of Materials Science and Engineering Chungnam National University 99 Daehang‐no, Yuseong‐gu Daejeon 305764 Republic of Korea

6. Division of Science Education and Institute of Fusion Science Jeonbuk National University Jeonju 54896 Republic of Korea

7. Department of Energy and Mineral Engineering Pennsylvania State University University Park PA 16802 USA

8. Division of Mechanical Design Engineering Jeonbuk National University Jeonju 54896 Republic of Korea

Abstract

AbstractSingle‐atomic catalysts based on ruthenium have a balanced efficiency for water splitting, but it is necessary to control their activity and durability. In this work, a binder‐free Fe2‐xRuxNb2O6 (FRNO) hybrid catalyst is rationally designed through a facile hydrogel‐crosslinking route. The as‐prepared FRNO catalyst exhibits high electrocatalytic activity and stability when operating under acidic (0.5 m H2SO4) and alkaline (1 m KOH) media. Operando X‐ray adsorption and density functional theory calculations show that FRNO/CC, with its high intrinsic conductivity, promotes the adsorption and dissociation of water on its surface by regulating the charge distribution via charge transfer to the coordinated surface oxygen. This facilitates the oxygen evolution reaction (OER) performance by stabilizing *OOH adsorption on Ru and Fe. The FRNO/carbon cloth (CC) hybrid catalyst also delivers excellent activity and stability for both hydrogen evolution reaction (HER) and OER in pH‐universal electrolytes with low overpotentials of 30 mV per 82 mV for HER and 200 mV per 260 mV for OER at a current density of 10 mA cm‐2 in acidic/basic medium. Ultimately, the FRNO/CC hybrid catalyst shows good water‐splitting performance, and it is expected to help contribute to the creation of various hybrid electrocatalysts.

Funder

National Research Foundation

National Research Foundation of Korea

Publisher

Wiley

Subject

General Materials Science,Renewable Energy, Sustainability and the Environment

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