High crystallinity design of Ir-based catalysts drives catalytic reversibility for water electrolysis and fuel cells

被引:0
作者
Woong Hee Lee
Young-Jin Ko
Jung Hwan Kim
Chang Hyuck Choi
Keun Hwa Chae
Hansung Kim
Yun Jeong Hwang
Byoung Koun Min
Peter Strasser
Hyung-Suk Oh
机构
[1] Korea Institute of Science and Technology (KIST),Clean Energy Research Center
[2] Korea Institute of Science and Technology (KIST),Center for Electronic Materials
[3] Yonsei University,Department of Chemical and Biomolecular Engineering
[4] Gwangju Institute of Science and Technology,School of Materials Science and Engineering
[5] Korea Institute of Science and Technology (KIST),Advanced Analysis Center
[6] Seoul National University,Department of Chemistry
[7] Center for Nanoparticle Research,Graduate School of Energy and Environment (KU
[8] Institute for Basic Science (IBS),KIST Green School)
[9] Korea University,The Electrochemical Energy, Catalysis, and Materials Science Laboratory, Department of Chemistry, Chemical Engineering Division
[10] Technical University Berlin,Division of Energy and Environmental Technology, KIST School
[11] Korea University of Science and Technology,KHU
[12] Kyung Hee University,KIST Department of Conversing Science and Technology
来源
Nature Communications | / 12卷
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摘要
The voltage reversal of water electrolyzers and fuel cells induces a large positive potential on the hydrogen electrodes, followed by severe system degradation. Applying a reversible multifunctional electrocatalyst to the hydrogen electrode is a practical solution. Ir exhibits excellent catalytic activity for hydrogen evolution reactions (HER), and hydrogen oxidation reactions (HOR), yet irreversibly converts to amorphous IrOx at potentials > 0.8 V/RHE, which is an excellent catalyst for oxygen evolution reactions (OER), yet a poor HER and HOR catalyst. Harnessing the multifunctional catalytic characteristics of Ir, here we design a unique Ir-based electrocatalyst with high crystallinity for OER, HER, and HOR. Under OER operation, the crystalline nanoparticle generates an atomically-thin IrOx layer, which reversibly transforms into a metallic Ir at more cathodic potentials, restoring high activity for HER and HOR. Our analysis reveals that a metallic Ir subsurface under thin IrOx layer can act as a catalytic substrate for the reduction of Ir ions, creating reversibility. Our work not only uncovers fundamental, uniquely reversible catalytic properties of nanoparticle catalysts, but also offers insights into nanocatalyst design.
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