Carbon impurity-free, novel Mn,N co-doped porous Mo 2 C nanorods for an efficient and stable hydrogen evolution reaction

Heteroatom doping is an effective way to modulate the electronic configuration and optimize the electroactivity over a series of electrocatalytic materials. Here we report novel kinds of Mn,N co-doped porous Mo 2 C nanorods for the hydrogen evolution reaction (HER) in acidic solution, which are faci...

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Veröffentlicht in:Inorganic chemistry frontiers 2019-09, Vol.6 (9), p.2464-2471
Hauptverfasser: Zhou, Yajun, Xu, Jieyu, Lian, Cheng, Ge, Lin, Zhang, Lingxia, Li, Liang, Li, Yunheng, Wang, Min, Liu, Honglai, Li, Yongsheng
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Sprache:eng
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Zusammenfassung:Heteroatom doping is an effective way to modulate the electronic configuration and optimize the electroactivity over a series of electrocatalytic materials. Here we report novel kinds of Mn,N co-doped porous Mo 2 C nanorods for the hydrogen evolution reaction (HER) in acidic solution, which are facilely fabricated based on Mn-modified MoO x -amine precursors. The obtained porous, monocrystalline nanorods without carbon impurities could not only provide abundant catalytic sites, but also facilitate electrolyte penetration and hydrogen release. Furthermore, the fine-tuned electronic structure of Mo 2 C nanorods with Mn,N dopants could produce more available active sites and reduce the hydrogen adsorption energy (Δ G H* ). As a result, the optimized Mn,N co-doped Mo 2 C nanorods exhibit high HER activity with a low overpotential ( η 10 = 163 mV), a small Tafel slope (66 mV dec −1 ), and excellent long-term stability in acidic electrolyte. EPR and DFT calculations confirm that the high performance originates from new active sites (Mn site), a low charge-transfer resistance and an optimized adsorption–desorption behavior after Mn,N co-doping. This work may provide a new pathway to design and explore efficient non-noble metal water-splitting electrocatalysts via electronic engineering of their compositions and nanostructures.
ISSN:2052-1553
2052-1553
DOI:10.1039/C9QI00676A