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Mesoporous Pt@Pt-skin Pt 3 Ni core-shell framework nanowire electrocatalyst for efficient oxygen reduction.

Hui JinZhewei XuZhi-Yi HuZhiwen YinZhao WangZhao DengPing WeiShihao FengShunhong DongJinfeng LiuSicheng LuoZhaodong QiuLiang ZhouLiqiang MaiBao-Lian SuDongyuan ZhaoYong Liu
Published in: Nature communications (2023)
The design of Pt-based nanoarchitectures with controllable compositions and morphologies is necessary to enhance their electrocatalytic activity. Herein, we report a rational design and synthesis of anisotropic mesoporous Pt@Pt-skin Pt 3 Ni core-shell framework nanowires for high-efficient electrocatalysis. The catalyst has a uniform core-shell structure with an ultrathin atomic-jagged Pt nanowire core and a mesoporous Pt-skin Pt 3 Ni framework shell, possessing high electrocatalytic activity, stability and Pt utilisation efficiency. For the oxygen reduction reaction, the anisotropic mesoporous Pt@Pt-skin Pt 3 Ni core-shell framework nanowires demonstrated exceptional mass and specific activities of 6.69 A/mg pt and 8.42 mA/cm 2 (at 0.9 V versus reversible hydrogen electrode), and the catalyst exhibited high stability with negligible activity decay after 50,000 cycles. The mesoporous Pt@Pt-skin Pt 3 Ni core-shell framework nanowire configuration combines the advantages of three-dimensional open mesopore molecular accessibility and compressive Pt-skin surface strains, which results in more catalytically active sites and weakened chemisorption of oxygenated species, thus boosting its catalytic activity and stability towards electrocatalysis.
Keyphrases
  • metal organic framework
  • room temperature
  • escherichia coli
  • wound healing
  • carbon dioxide
  • solid state