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A Highly Active Porous Mo 2 C-Mo 2 N Heterostructure on Carbon Nanowalls/Diamond for a High-Current Hydrogen Evolution Reaction.

Authors :
Zhai Z
Zhang C
Chen B
Liu L
Song H
Yang B
Zheng Z
Li J
Jiang X
Huang N
Source :
Nanomaterials (Basel, Switzerland) [Nanomaterials (Basel)] 2024 Jan 23; Vol. 14 (3). Date of Electronic Publication: 2024 Jan 23.
Publication Year :
2024

Abstract

Developing non-precious metal-based electrocatalysts operating in high-current densities is highly demanded for the industry-level electrochemical hydrogen evolution reaction (HER). Here, we report the facile preparation of binder-free Mo <subscript>2</subscript> C-Mo <subscript>2</subscript> N heterostructures on carbon nanowalls/diamond (CNWs/D) via ultrasonic soaking followed by an annealing treatment. The experimental investigations and density functional theory calculations reveal the downshift of the d-band center caused by the heterojunction between Mo <subscript>2</subscript> C/Mo <subscript>2</subscript> N triggering highly active interfacial sites with a nearly zero ∆ G <subscript>H*</subscript> value. Furthermore, the 3D-networked CNWs/D, as the current collector, features high electrical conductivity and large surface area, greatly boosting the electron transfer rate of HER occurring on the interfacial sites of Mo <subscript>2</subscript> C-Mo <subscript>2</subscript> N. Consequently, the self-supporting Mo <subscript>2</subscript> C-Mo <subscript>2</subscript> N@CNWs/D exhibits significantly low overpotentials of 137.8 and 194.4 mV at high current densities of 500 and 1000 mA/cm <superscript>2</superscript> , respectively, in an alkaline solution, which far surpass the benchmark Pt/C (228.5 and 359.3 mV) and are superior to most transition-metal-based materials. This work presents a cost-effective and high-efficiency non-precious metal-based electrocatalyst candidate for the electrochemical hydrogen production industry.

Details

Language :
English
ISSN :
2079-4991
Volume :
14
Issue :
3
Database :
MEDLINE
Journal :
Nanomaterials (Basel, Switzerland)
Publication Type :
Academic Journal
Accession number :
38334514
Full Text :
https://doi.org/10.3390/nano14030243