Amorphous‐Crystalline Interfaces on Hollow Nanocubes Derived from Ir‐Doped Ni–Fe–Zn Prussian Blue Analog Enables High Capability of Alkaline/Acidic/Saline Water Oxidations

Author:

Han HyukSu12ORCID,Kim So Jung1,Jung Sun Young1,Oh Dongjo3,Nayak Arpan Kumar1,Jang Jin Uk1,Bang Junghwan4,Yeo Sunghwan5,Shin Tae Ho6

Affiliation:

1. Department of Energy Engineering Konkuk University 120 Neungdong‐ro, Gwangjin‐gu Seoul 05029 Republic of Korea

2. Department of Energy Science Sungkyunkwan University 2066 Seobu‐ro, Jangan‐gu Suwon‐si Gyeonggi‐do 16419 Republic of Korea

3. E‐Propulsion System Business Group Hanwha Aerospace, 6 Pangyo‐ro 319 beon‐gil, Bundang‐gu Seongnam Republic of Korea

4. Korea Institute of Industrial Technology 156 Gaetbeol‐ro, Yeonsu‐gu Incheon 406‐840 Republic of Korea

5. Innovative Fuel Development Division Korea Atomic Energy Research Institute Daedeok‐daero 989‐111, Yuseong‐gu Daejeon 305‐353 Republic of Korea

6. Korea Institute of Ceramic Engineering and Technology KICET, 101 Soho‐Ro Jinju 52851 Republic of Korea

Abstract

AbstractDevelopment of highly efficient and robust electrocatalysts for oxygen evolution reaction (OER) under specific electrolyte is a key to actualize commercial low‐temperature water electrolyzers. Herein, a rational catalyst design strategy is first reported based on amorphous–crystalline (a–c) interfacial engineering to achieve high catalytic activity and durability under diverse electrolytes that can be used for all types of low‐temperature water electrolysis. Abundant a–c interface (ACI) is implemented into a hollow nanocubic (pre)‐electrocatalyst which is derived from Ir‐doped Ni–Fe–Zn Prussian blue analogues (PBA). The implemented c–a interface is well maintained during prolonged OER in alkaline, alkalized saline, and acidic electrolytes demonstrating its diverse functionality for water electrolysis. Notably, the final catalyst exhibits superior catalytic activity with excellent durability for OER compared to that of benchmark IrO2 catalyst, regardless of chemical environment of electrolytes. Hence, this work can be an instructive guidance for developing the ACI engineered electroctalyst which can be diversely used for different types of low‐temperature electrolyzers.

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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