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High buffering capacity cobalt-doped nickel hydroxide electrode as redox mediator for flexible hydrogen evolution by two-step water electrolysis.

Authors :
He, Yuan
Sun, Chengwei
Alharbi, Njud S.
Yang, Shubin
Chen, Changlun
Source :
Journal of Colloid & Interface Science. Nov2023:Part A, Vol. 650, p151-160. 10p.
Publication Year :
2023

Abstract

[Display omitted] Two-step water electrolysis has been proposed to tackle the ticklish H 2 /O 2 mixture problems in conventional alkaline water electrolysis recently. However, low buffering capacity of pure nickel hydroxide electrode as redox mediator limited practical application of two-step water electrolysis system. A high-capacity redox mediator (RM) is urgently needed to permit consecutive operation of two-step cycles and high-efficiency hydrogen evolution. Consequently, a high mass-loading cobalt-doped nickel hydroxide/active carbon cloth (NiCo-LDH/ACC) RM is synthesized via a facile electrochemical method. The proper Co doping can apparently enhance the conductivity and simultaneously remain the high-capacity of the electrode. Density functional theory results further confirms more negative values in redox potential of NiCo-LDH/ACC than Ni(OH) 2 /ACC on account of the charge redistribution induced by Co doping, which can prevent the parasitic O 2 evolution on RM electrode during decoupled H 2 evolution step. As a result, the NiCo-LDH/ACC combined the superiorities of high-capacity Ni(OH) 2 /ACC and high-conductivity Co(OH) 2 /ACC, and the NiCo-LDH/ACC with 4:1 ratio of Ni to Co presented a large specific capacitance of 33.52F/cm2 for reversible charge–discharge and high buffering capacity with two-step H 2 /O 2 evolution duration of 1740 s at 10 mA/cm2. The necessary input voltage (2.00 V) of the whole water electrolysis was broken into two smaller ones, 1.41 and 0.38 V, for H 2 and O 2 production, respectively. NiCo-LDH/ACC provided a favorable electrode material for the practical application of two-step water electrolysis system. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00219797
Volume :
650
Database :
Academic Search Index
Journal :
Journal of Colloid & Interface Science
Publication Type :
Academic Journal
Accession number :
169929852
Full Text :
https://doi.org/10.1016/j.jcis.2023.06.102