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A high-density nickel-cobalt alloy embedded in nitrogen-doped carbon nanosheets for the hydrogen evolution reaction.

Lihua HuJialing ShiZhiguang PengZefeng ZhengHuafeng DongTiejun Wang
Published in: Nanoscale (2022)
The development of novel non-noble electrocatalysts is critical for an efficient electrochemical hydrogen evolution reaction (HER). In this study, high-density nickel-cobalt alloy nanoparticles embedded in the bent nitrogen-doped carbon nanosheets are prepared as a high-performance catalyst. The optimized Ni 7 Co 3 /NC-500 catalyst displays quite a low overpotential of 90 mV at a current density of 10 mA cm -2 , and a small Tafel slope of 64 mV dec -1 in alkaline medium, and even performs better than commercial 20% Pt/C at a high current density ( η 150 = 233 mV for Ni 7 Co 3 /NC-500 and η 150 = 267 mV for 20% Pt/C). Specifically, the high-density nickel-cobalt alloy (with an average size of 6.2 nm and a distance of <3.0 nm) embedded in the bent carbon nanosheets provides plentiful active sites. Furthermore, in situ visualization of the produced hydrogen bubbles shows that the small size of hydrogen bubbles ( d = 0.2 mm for Ni 7 Co 3 /NC-500 vs. d = 0.8 mm for 20% Pt/C) resulting from the small water contact angle and the bent nanosheet structure would inhibit the aggregation of H 2 bubbles on the surface to facilitate efficient mass diffusion. Density functional theory calculations reveal that the formation of the nickel-cobalt alloy can effectively lower water dissociation energy barriers and optimize hydrogen adsorption Gibbs free energy, manifesting a high HER activity.
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