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Electronic Structure Regulated Nickel-Cobalt Bimetal Phosphide Nanoneedles for Efficient Overall Water Splitting.
- Source :
- Molecules; Feb2024, Vol. 29 Issue 3, p657, 14p
- Publication Year :
- 2024
-
Abstract
- Transition metal phosphides (TMPs) have been widely studied for water decomposition for their monocatalytic property for anodic or cathodic reactions. However, their bifunctional catalytic activity still remains a major challenge. Herein, hexagonal nickel-cobalt bimetallic phosphide nanoneedles with 1–3 μm length and 15–30 nm diameter supported on NF (Ni<subscript>x</subscript>Co<subscript>2−x</subscript>P NDs/NF) with adjusted electron structure have been successfully prepared. The overall alkaline water electrolyzer composed of the optimal anode (Ni<subscript>0.67</subscript>Co<subscript>1.33</subscript>P NDs/NF) and cathode (Ni<subscript>1.01</subscript>Co<subscript>0.99</subscript>P NDs/NF) provide 100 mA cm<superscript>−2</superscript> at 1.62 V. Gibbs Free Energy for reaction paths proves that the active site in the hydrogen evolution reaction (HER) is Ni and the oxygen evolution reaction (OER) is Co in Ni<subscript>x</subscript>Co<subscript>2−x</subscript>P, respectively. In the HER process, Co-doping can result in an apparent accumulation of charge around Ni active sites in favor of promoting HER activity of Ni sites, and ΔG<subscript>H*</subscript> of 0.19 eV is achieved. In the OER process, the abundant electron transfer around Co-active sites results in the excellent ability to adsorb and desorb *O and *OOH intermediates and an effectively reduced ∆G<subscript>RDS</subscript> of 0.37 eV. This research explains the regulation of electronic structure change on the active sites of bimetallic materials and provides an effective way to design a stable and effective electrocatalytic decomposition of alkaline water. [ABSTRACT FROM AUTHOR]
Details
- Language :
- English
- ISSN :
- 14203049
- Volume :
- 29
- Issue :
- 3
- Database :
- Complementary Index
- Journal :
- Molecules
- Publication Type :
- Academic Journal
- Accession number :
- 175371383
- Full Text :
- https://doi.org/10.3390/molecules29030657