Evolution of novel nanostructured MoCoFe-based hydroxides composites toward high-performance electrochemical applications: Overall water splitting and supercapacitor
Author:
Funder
National Research Foundation of Korea
Publisher
Elsevier BV
Subject
Industrial and Manufacturing Engineering,Mechanical Engineering,Mechanics of Materials,Ceramics and Composites
Reference59 articles.
1. O22-/O–functionalized oxygen–deficient Co3O4 nanorods as high performance supercapacitor electrodes and electrocatalysts towards water splitting;Cheng;Nano Energy,2017
2. Novel SmMn2O5 hollow long nano–cuboids for electrochemical supercapacitor and water splitting applications;Rani;Vacuum,2019
3. Coupling NiSe2–Ni2P heterostructure nanowrinkles for highly efficient overall water splitting;Wang;J Catal,2019
4. Recent progress in water splitting and hybrid supercapacitors based on nickel–vanadium layered double hydroxides;Gonçalves;J Energy Chem,2021
5. NiCoFe layered triple hydroxides with porous structures as high–performance electrocatalysts for overall water splitting;Wang;ACS Energy Lett,2016
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