High performance platinum single atom electrocatalyst for oxygen reduction reaction

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作者
Jing Liu
Menggai Jiao
Lanlu Lu
Heather M. Barkholtz
Yuping Li
Ying Wang
Luhua Jiang
Zhijian Wu
Di-jia Liu
Lin Zhuang
Chao Ma
Jie Zeng
Bingsen Zhang
Dangsheng Su
Ping Song
Wei Xing
Weilin Xu
Ying Wang
Zheng Jiang
Gongquan Sun
机构
[1] State Key Laboratory of Electroanalytical Chemistry,Chemical Sciences and Engineering Division
[2] Jilin Province Key Laboratory of Low Carbon Chemical Power,Division of Fuel Cell and Battery
[3] Changchun Institute of Applied Chemistry,Department of Chemical Physics
[4] Chinese Academy of Sciences,undefined
[5] University of Chinese Academy of Sciences,undefined
[6] State Key Laboratory of Rare Earth Resource Utilization,undefined
[7] Changchun Institute of Applied Chemistry,undefined
[8] Chinese Academy of Sciences,undefined
[9] Shanghai Synchrotron Radiation Facility,undefined
[10] Shanghai Institute of Applied Physics,undefined
[11] Chinese Academy of Sciences,undefined
[12] Argonne National Laboratory,undefined
[13] Dalian National Laboratory for Clean Energy,undefined
[14] Dalian Institute of Chemical Physics,undefined
[15] Chinese Academy of Sciences,undefined
[16] College of Chemistry and Molecular Sciences,undefined
[17] Hubei Key Lab of Electrochemical Power Sources,undefined
[18] Wuhan University,undefined
[19] Hefei National Laboratory for Physical Sciences at the Microscale,undefined
[20] University of Science and Technology of China,undefined
[21] Shenyang National Laboratory for Materials Science,undefined
[22] Institute of Metal Research,undefined
[23] Chinese Academy of Sciences,undefined
[24] Fritz Haber Institute of the Max Planck Society,undefined
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摘要
For the large-scale sustainable implementation of polymer electrolyte membrane fuel cells in vehicles, high-performance electrocatalysts with low platinum consumption are desirable for use as cathode material during the oxygen reduction reaction in fuel cells. Here we report a carbon black-supported cost-effective, efficient and durable platinum single-atom electrocatalyst with carbon monoxide/methanol tolerance for the cathodic oxygen reduction reaction. The acidic single-cell with such a catalyst as cathode delivers high performance, with power density up to 680 mW cm−2 at 80 °C with a low platinum loading of 0.09 mgPt cm−2, corresponding to a platinum utilization of 0.13 gPt kW−1 in the fuel cell. Good fuel cell durability is also observed. Theoretical calculations reveal that the main effective sites on such platinum single-atom electrocatalysts are single-pyridinic-nitrogen-atom-anchored single-platinum-atom centres, which are tolerant to carbon monoxide/methanol, but highly active for the oxygen reduction reaction.
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