Pt1.8Pd0.2CuGa Intermetallic Nanocatalysts with Enhanced Methanol Oxidation Performance for Efficient Hybrid Seawater Electrolysis

Author:

Xu Kaiyang123,Liang Lecheng4,Li Tong12,Bao Mujie12,Yu Zhipeng35,Wang Jingwei3,Thalluri Sitaramanjaneya Mouli5,Lin Fei3,Liu Quanbing12,Cui Zhiming4,Song Shuqin6,Liu Lifeng3ORCID

Affiliation:

1. Guangzhou Key Laboratory of Clean Transportation Energy Chemistry Guangdong Provincial Key Laboratory of Plant Resources Biorefinery School of Chemical Engineering and Light Industry Guangdong University of Technology Guangzhou 510006 China

2. Jieyang Branch of Chemistry and Chemical Engineering Guangdong Laboratory (Rongjiang Laboratory) Jieyang 515200 China

3. Songshan Lake Materials Laboratory (SLAB) Dongguan 523808 P. R. China

4. The Key Laboratory of Fuel Cell Technology of Guangdong Province School of Chemistry and Chemical Engineering South China University of Technology Guangzhou 510641 China

5. International Iberian Nanotechnology Laboratory (INL) Braga 4715‐330 Portugal

6. The Key Lab of Low‐Carbon Chemistry & Energy Conservation of Guangdong Province PCFM Lab School of Materials Science and Engineering Sun Yat‐Sen University Guangzhou 510006 P. R. China

Abstract

AbstractSeawater electrolysis is a potentially cost‐effective approach to green hydrogen production, but it currently faces substantial challenges for its high energy consumption and the interference of chlorine evolution reaction (ClER). Replacing the energy‐demanding oxygen evolution reaction with methanol oxidation reaction (MOR) represents a promising alternative, as MOR occurs at a significantly low anodic potential, which cannot only reduce the voltage needed for electrolysis but also completely circumvents ClER. To this end, developing high‐performance MOR catalysts is a key. Herein, a novel quaternary Pt1.8Pd0.2CuGa/C intermetallic nanoparticle (i‐NP) catalyst is reported, which shows a high mass activity (11.13 A mgPGM−1), a large specific activity (18.13 mA cmPGM−2), and outstanding stability toward alkaline MOR. Advanced characterization and density functional theory calculations reveal that the introduction of atomically distributed Pd in Pt2CuGa intermetallic markedly promotes the oxidation of key reaction intermediates by enriching electron concentration around Pt sites, resulting in weak adsorption of carbon‐containing intermediates and favorable adsorption of synergistic OH groups near Pd sites. MOR‐assisted seawater electrolysis is demonstrated, which continuously operates under 1.23 V for 240 h in simulated seawater and 120 h in natural seawater without notable degradation.

Funder

National Natural Science Foundation of China

Ministry of Science and Technology of the People's Republic of China

Publisher

Wiley

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