Synergetic effect of phosphorus-dopant and graphene-covering layer on hydrogen evolution activity and durability of NiCo2S4 electrocatalysts

The investigation of highly conductive and stable non-noble metal electrocatalysts is imperative for promoting the hydrogen economy. Herein, we employed het-eroatom-doping and graphene-covering techniques to enhance the electronic properties of NiCo 2 S 4 (NCS) yolk-shell microspheres, boosting thei...

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Veröffentlicht in:Science China materials 2023-10, Vol.66 (10), p.3875-3886
Hauptverfasser: Chen, Jie, Mao, Liang, Xu, Jiachen, Gu, Xiuquan, Popov, Zakhar I., Zhao, Yulong, Ling, Yihan, Sui, Yanwei, Ying, Pengzhan, Cai, Xiaoyan, Zhang, Junying
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Sprache:eng
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Zusammenfassung:The investigation of highly conductive and stable non-noble metal electrocatalysts is imperative for promoting the hydrogen economy. Herein, we employed het-eroatom-doping and graphene-covering techniques to enhance the electronic properties of NiCo 2 S 4 (NCS) yolk-shell microspheres, boosting their resistance to H 2 O and O 2 corrosion in acidic environments. Based on the results of density functional theory (DFT) simulations and comprehensive characterizations, P heteroatom introduction into NCS was found to expedite electron transfer from bulk to surface, reducing the barrier for the hydrogen evolution reaction (HER) on neighboring active S sites. DFT-calculated energy barriers and X-ray photoelectron spectrometer analysis substantiated that the reduced graphene oxide (rGO)-covering layer played a vital role by facilitating proton permeability in HER while hindering H 2 O and O 2 molecule penetration. By leveraging charge transfer and mass transfer, a balanced catalyst with high activity and corrosion resistance was achieved. The optimized P-NCS/rGO catalyst exhibited a current density of 10 mA cm −2 at a low overpotential of 70 mV, demonstrating excellent durability over 80 h. This study exemplified the rational design of graphene-covered sulfide catalysts, enhancing electrocatalyst performance through the regulation of electronic structures and proton/molecule penetration.
ISSN:2095-8226
2199-4501
DOI:10.1007/s40843-023-2546-3