Issue 5, 2023

Hierarchical porous NiFe-P@NC as an efficient electrocatalyst for alkaline hydrogen production and seawater electrolysis at high current density

Abstract

Economical, efficient and stable transition-metal electrocatalysts are considered great candidatures for replacing noble-metal materials for alkaline hydrogen production. Hence, corrosion engineering and mild phosphating processes were adopted to construct NiFe phosphide encapsulated in nitrogen-doped carbon (NiFe-P@NC). The latter presented a hierarchical morphology with an interconnected three-dimensional porous structure. The unique NiFe-P@NC presented excellent hydrogen evolution reaction (HER) performance with an overpotential of 40 mV at 10 mA cm−2 along with excellent stability in KOH solution (1 M). Notably, NiFe-P@NC required low overpotentials of 149 mV and 280 mV to afford 100 mA cm−2 for HER and oxygen evolution reaction (OER) performance in KOH (1 M) + seawater electrolyte, respectively. Furthermore, as a remarkable bifunctional electrocatalyst, the assembled NiFe-P@NC || NiFe-P@NC electrolyzer with low cell voltages of 1.77 V and 1.93 V could drive 100 mA cm−2 and 500 mA cm−2 in alkaline seawater electrolyte. Remarkably, a water-splitting device could be actuated efficiently by sustainable energies to facilitate a source of hydrogen energy.

Graphical abstract: Hierarchical porous NiFe-P@NC as an efficient electrocatalyst for alkaline hydrogen production and seawater electrolysis at high current density

Supplementary files

Article information

Article type
Research Article
Submitted
21 Dec 2022
Accepted
10 Jan 2023
First published
10 Jan 2023

Inorg. Chem. Front., 2023,10, 1493-1500

Hierarchical porous NiFe-P@NC as an efficient electrocatalyst for alkaline hydrogen production and seawater electrolysis at high current density

Z. Chen, Q. Li, H. Xiang, Y. Wang, P. Yang, C. Dai, H. Zhang, W. Xiao, Z. Wu and L. Wang, Inorg. Chem. Front., 2023, 10, 1493 DOI: 10.1039/D2QI02703H

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