Phase‐Bridged Hierarchical Catalysts for Efficient and Stable Water Electrolysis

Author:

Zhang Yihan1,Lee Sangjin2,Jeong Seulgi3,Son Eunbin1,Baik Jeong Min45,Han Young‐Kyu2,Park Hyesung67ORCID

Affiliation:

1. Department of Materials Science and Engineering Ulsan National Institute of Science and Technology Ulsan 44919 Republic of Korea

2. Department of Energy and Materials Engineering Dongguk University 04620 Seoul Republic of Korea

3. Graduate School of Semiconductor Materials and Devices Engineering Ulsan National Institute of Science and Technology Ulsan 44919 Republic of Korea

4. School of Advanced Materials Science and Engineering Sungkyunkwan University (SKKU) Suwon 16419 Republic of Korea

5. SKKU Institute of Energy Science and Technology (SIEST) Sungkyunkwan University Suwon 16419 Republic of Korea

6. KU‐KIST Graduate School of Converging Science and Technology Korea University 145 Anam‐ro Seongbuk‐gu Seoul 02841 Republic of Korea

7. Department of Integrative Energy Engineering Korea University 145 Anam‐ro Seongbuk‐gu Seoul 02841 Republic of Korea

Abstract

AbstractThe design and synthesis of low‐cost electrocatalysts with high catalytic activity and long‐term stability is a challenging task. This study utilizes a combination of electronic tuning and surface reconstruction to synthesize a ternary layered double hydroxide (LDH)/phosphide (P−NiCuFe−LDH) hierarchical‐structure catalyst that improves the kinetics of the hydrogen/oxygen evolution reactions in water electrolysis by facilitating the thermodynamically limited reaction pathways. Spectroscopic analyses indicate synergistic electronic interactions among the metal atoms in the LDH and phosphide layers via the P‐bridge effect. This cross‐layer interaction optimizes the electron transport pathways and reaction kinetics, enabling the proposed hierarchical electrocatalyst to exhibit high intrinsic activity. Theoretical calculations confirm the configuration of the cross‐phase bridges and elucidate the origin of the enhanced electrocatalytic effect of P−NiCuFe−LDH. For overall water splitting, the P−NiCuFe0.06−LDH || P−NiCuFe0.06−LDH system requires only 1.517 V to attain a current density of 10 mA cm−2. The P−O‐containing surface (generated in situ during water electrolysis) prevents metal‐ion leaching and endows P−NiCuFe−LDH with excellent operational stability; as demonstrated by the continuous long‐term stability test over 1000 h with negligible performance degradation. This study provides important insights into the design of rational hierarchical structures for a wide range of applications beyond water splitting.

Funder

Ministry of Science and ICT, South Korea

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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