Enhanced ethanol oxidation over Pd nanoparticles supported porous graphene-doped MXene using polystyrene particles as sacrificial templates

Fabrication of superior catalytic performance palladium-based catalysts with affordable cost is the key to develop direct ethanol fuel cell. Herein, Pd-decorated three-dimensional (3D) porous constructed from graphene oxide (GO) and MXene combining with polystyrene (PS) particles as sacrificial temp...

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Veröffentlicht in:Rare metals 2022-09, Vol.41 (9), p.3170-3179
Hauptverfasser: Chen, Yi-Zhe, Zhou, Ming, Huang, Yu-Fu, Ma, Yan-Yun, Yan, Luo-Yi, Zhou, Xin-Wen, Ma, Xin-Zhou, Zhao, Xue-Ling, Chen, Cheng, Bai, Juan, Lin, Dong-Hai
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Sprache:eng
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Zusammenfassung:Fabrication of superior catalytic performance palladium-based catalysts with affordable cost is the key to develop direct ethanol fuel cell. Herein, Pd-decorated three-dimensional (3D) porous constructed from graphene oxide (GO) and MXene combining with polystyrene (PS) particles as sacrificial templates (Pd/GO-MXene-PS) to elevate the catalytic performance for ethanol oxidation was proposed. The 3D porous interconnected structure of Pd/GO-MXene-PS was characterized by scanning electron microscope (SEM), transmission electron microscope (TEM) and Brunner−Emmet−Teller (BET). By optimizing the doping ratio of MXene to GO, the mass activity of Pd/GO 5 -MXene 5 -PS (2944.0 mA·mg −1 ) was 3.0 times higher than that of commercial Pd/C (950.4 mA·mg −1 ) toward ethanol oxidation in base solution. Meanwhile, the rotating disk electrode (RDE) results demonstrated that Pd/GO 5 -MXene 5 -PS had a faster kinetics of ethanol oxidation. The enhanced ethanol oxidation over Pd/GO 5 -MXene 5 -PS could attribute to the excellent 3D interconnected porous structure, large surface area, good conductivity and homogeneous Pd distribution. This work provided a new idea for creating 3D porous MXene composite materials in electrocatalysis. Graphical abstract
ISSN:1001-0521
1867-7185
DOI:10.1007/s12598-022-02039-5