Plasma‐Induced Formation of Pt Nanoparticles with Optimized Surface Oxidation States for Methanol Oxidation and Oxygen Reduction Reactions to Achieve High‐Performance DMFCs

Author:

Hu Tingting1,Chen Weiheng12,Liu Yubing1,Gong Longxiang1,Jiang Zhongqing1ORCID,Bhalothia Dinesh3,Maiyalagan Thandavarayan4,Jiang Zhong‐Jie5

Affiliation:

1. Key Laboratory of Optical Field Manipulation of Zhejiang Province Department of Physics Zhejiang Sci‐Tech University Hangzhou 310018 P. R. China

2. Department of Mechanical Engineering Ningbo University of Technology Ningbo 315336 P. R. China

3. Department of Engineering and System Science National Tsing Hua University Hsinchu 30013 Taiwan

4. Electrochemical Energy Laboratory Department of Chemistry SRM Institute of Science and Technology SRM Nagar Kattankulathur 603203 India

5. Guangdong Engineering and Technology Research Center for Surface Chemistry of Energy Materials & Guangzhou Key Laboratory for Surface Chemistry of Energy Materials New Energy Research Institute College of Environment and Energy South China University of Technology Guangzhou 510006 P. R. China

Abstract

AbstractPlasma treatment and reduction are used to synthesize Pt nanoparticles (NPs) on nitrogen‐doped carbon nanotubes (p‐Pt/p‐NCNT) with a low Pt content. In particular, the plasma treatment is used to treat the NCNT to give it with more surface defects, facilitating a better growth of the Pt NPs, while the plasma reduction produces the Pt NPs with a reduced fraction of the surface atoms at the high oxidation states, increasing the catalytic activities of the p‐Pt@p‐NCNT. Even at the low Pt content (7.8 wt.%), the p‐Pt@p‐NCNT shows superior catalytic activities and good stabilities for methanol oxidation reaction (MOR) and oxygen reduction reaction (ORR). The density functional theory (DFT) calculations indicate that the defects generated in the plasma treatment can help the growth of the Pt NPs on the NCNTs, leading to the stronger electronic coupling between Pt and NCNT and the increased stability of the catalyst. The plasma reduction can give the Pt NPs with optimized surface oxidation states, decreasing the energy barriers of the rate‐determining steps for MOR and ORR. When used as the anode and cathode catalysts for the direct methanol fuel cells (DMFCs), the p‐Pt@p‐NCNT exhibits a higher maximum power density of 81.9 mW cm−2 at 80 °C and shows good durability.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Zhejiang Province

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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