Pd–PdO Nanodomains on Amorphous Ru Metallene Oxide for High‐Performance Multifunctional Electrocatalysis

Author:

Do Viet‐Hung12,Prabhu P1,Jose Vishal12,Yoshida Takefumi34,Zhou Yingtang5,Miwa Hiroko34,Kaneko Takuma6,Uruga Tomoya6,Iwasawa Yasuhiro34,Lee Jong‐Min12ORCID

Affiliation:

1. School of Chemistry Chemical Engineering and Biotechnology Nanyang Technological University 62 Nanyang Drive Singapore 637459 Singapore

2. Energy Research Institute @ NTU (ERI@N) Interdisciplinary Graduate School Nanyang Technological University 50 Nanyang Drive Singapore 637553 Singapore

3. Innovation Research Center for Fuel Cells The University of Electro‐Communications Chofu Tokyo 182–8585 Japan

4. Physical and Chemical Research Infrastructure Group RIKEN SPring‐8 Center RIKEN Sayo Hyogo 679–5198 Japan

5. National Engineering Research Center for Marine Aquaculture Marine Science and Technology College Zhejiang Ocean University Zhoushan 316004 China

6. Research & Utilization Division Japan Synchrotron Radiation Research Institute SPring‐8 Sayo Hyogo 679–5198 Japan

Abstract

AbstractDeveloping highly efficient multifunctional electrocatalysts is crucial for future sustainable energy  pursuits, but remains a great challenge. Herein, a facile synthetic strategy is used to confine atomically thin Pd–PdO nanodomains to amorphous Ru metallene oxide (RuO2). The as‐synthesized electrocatalyst (Pd2RuOx‐0.5 h) exhibits excellent catalytic activity toward the pH‐universal hydrogen evolution reaction (η10 = 14 mV in 1 m KOH, η10 = 12 mV in 0.5 m H2SO4, and η10 = 22 mV in 1 m PBS), alkaline oxygen evolution reaction (η10 = 225 mV), and overall water splitting (E10 = 1.49 V) with high mass activity and operational stability. Further reduction endows the material (Pd2RuOx‐2 h) with a promising alkaline oxygen reduction activity, evidenced by high halfway potential, four‐electron selectivity, and excellent poison tolerance. The enhanced catalytic activity is attributed to the rational integration of favorable nanostructures, including 1) the atomically thin nanosheet morphology, 2) the coexisting amorphous and defective crystalline phases, and 3) the multi‐component heterostructural features. These structural factors effectively regulate the material's electronic configuration and the adsorption of intermediates at the active sites for favorable reaction energetics.

Funder

Ministry of Education - Singapore

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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