(Fe, Ni)S2@MoS2/NiS2 hollow heterostructure nanocubes for high-performance alkaline water electrolysis
Author:
Publisher
Elsevier BV
Subject
Energy Engineering and Power Technology,Condensed Matter Physics,Fuel Technology,Renewable Energy, Sustainability and the Environment
Reference35 articles.
1. Progress and challenge of amorphous catalysts for electrochemical water splitting;Zhou;ACS Mater Lett,2021
2. Hierarchical ZnS@C@MoS2 core-shell nanostructures as efficient hydrogen evolution electrocatalyst for alkaline water electrolysis;Liu;Int J Hydrogen Energy,2019
3. Hydrogen production coupled with water and organic oxidation based on layered double hydroxides;Song;Explorations,2021
4. Ultrathin WS2 nanosheets vertically aligned on TiO2 nanobelts as efficient alkaline hydrogen evolution electrocatalyst;Liu;Int J Hydrogen Energy,2020
5. Biomimetic assembly to superplastic metal–organic framework aerogels for hydrogen evolution from seawater electrolysis;Sun;Explorations,2021
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1. Hollow Fe‐Doped Ni(OH)2–NiS@Ni(OH)2 Nanorod Array with Regulated Heterostructural Interface and Band Structure for Expediting Alkaline Electrocatalytic Overall Water Splitting;Advanced Functional Materials;2024-08-02
2. Three-phase interface engineering via P-doped CoMo2S4-integrated Co4S3/Co2P enables high-efficiency overall water splitting;Applied Catalysis B: Environmental;2024-05
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4. Tailoring high-performance catalyst architectures via ‘accessional ionomer coatings’ for anion exchange membrane water electrolysis;International Journal of Hydrogen Energy;2024-01
5. Synergistic effects of 1T-2H MoS2 nanoflowers modified with Ag3PO4 nanoclusters for highly efficient electrochemical activity;International Journal of Hydrogen Energy;2023-07
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