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"Nanoregion" effect of ionic liquid mixture system for preparing highly active porous electrocatalytic hydrogen production materials.

Authors :
Fu, Donglu
Song, Zongren
Ma, Xiaoxue
Liu, Boyu
Suo, Shilong
Yu, Shiju
Jing, Minghua
Fang, Dawei
Source :
Fuel. Feb2025:Part C, Vol. 381, pN.PAG-N.PAG. 1p.
Publication Year :
2025

Abstract

[Display omitted] • "Nanoregion" was used as an adjustable template to prepare porous HER catalyst. • Porous NiCo@NC with higher active area was synthesized by the "Nanoregion". • Porous NiCo@NC showed superior electrocatalytic HER activity. • The overpotential (10 mA cm−2) and Tafel slope reduced by 42 % and 33.9 %. The development of porous electrocatalytic materials with high activity and large specific surface area is the key to realizing efficient hydrogen production by water electrolysis. In this paper, a universial strategy for preparing porous non-precious metal electrocatalysts with high effective surface area is provided based on the "nanoregion" formed by ionic liquid mixture system, and the feasibility is verified by constructing a porous NiCo@NC based electrocatalyst. The microstructure, surface composition, specific surface area and electrochemical properties of the porous electrocatalyst are investigated systematically. Compared with the traditional hydrothermal synthesis, the "nanoregion" effect can give the NiCo@NC electrocatalyst rich pore structure and good hydrophilicity, thus effectively improve the effective surface area available for the electrochemical reaction. As a result, the overpotential for HER on NiCo@NC-500 prepared in the ionic liquid mixing system is 113 mV lower than that on NiCo@NC-500-w prepared by common hydrothermal process, and the Tafel slope decreases by 37 mV dec−1 (33.9 %), further verifying the effectiveness of this simple and green strategy to develop porous non-precious metal electrocatalysts for hydrogen production by the "nanoregion" effect of ionic liquid mixture system. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00162361
Volume :
381
Database :
Academic Search Index
Journal :
Fuel
Publication Type :
Academic Journal
Accession number :
181196904
Full Text :
https://doi.org/10.1016/j.fuel.2024.133641