PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
May 6, 2026EcoEnergy2 citationsOpen Access

Achievement of Transition Metal Chalcogenides/Oxides in Hydrogen Production by Seawater Electrolysis

View Full Paper
XDXiaohui DuXLXinyu LiJLJ M Li

Key Points

  • To summarize the advancements in transition metal chalcogenides and their application in hydrogen production through seawater electrolysis.
  • Systematic summary of transition metal chalcogenides in hydrogen production by seawater electrolysis.
  • Discussion of optimization strategies including doping, heterojunction construction, and defect engineering.
  • Exploration of structural characterization and catalytic performance.
  • Transition metal chalcogenides exhibit adjustable electronic properties and abundant active sites for catalysis.
  • Effective strategies for catalyst construction were highlighted, boosting performance and stability.
  • Challenges and future directions for industrial application of these materials were outlined.

Abstract

ABSTRACT Under the impetus of global “dual carbon” goals, green hydrogen has become a key component of the future energy system, in which seawater electrolysis for hydrogen production is an important direction in various techniques. The key to this technology lies in synthesizing a high‐performance catalyst with high selectivity, activity, and stability, while choosing materials that are widely available, easy to extract, and environmentally friendly and low cost. In recent years, transition metal chalcogenides (TMCs)/oxides have shown great application potential in seawater splitting for hydrogen generation due to their adjustable electronic properties, abundant active sites, and excellent catalytic performance. In this review, we systematically summarize the achievement of TMCs/oxides in hydrogen production by seawater electrolysis focusing on the strategies to construct advanced catalysts. The optimization strategies including dopant, heterojunction construction and defect engineering are discussed in detail, covering preparation processes, catalytic performance, structural characterization, catalytic mechanisms, the structure‐activity relationship between microstructures and catalytic activity, as well as the design principles for boosting industrial application. Finally, the existing challenges and future development directions of TMCs/oxides materials for seawater electrolysis hydrogen production are summarized and prospected.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Du et al. (2026) studied this question.

synapsesocial.com/papers/69fa986a04f884e66b53232bhttps://doi.org/10.1002/ece2.70072
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1NiO/RuO2 p–n Heterojunction Nanofoam as a High-Performance Electrocatalyst for Desulfurization and Concurrent Hydrogen Evolution2024 · 19 citations
  2. 2Uniform anchoring of MoS2 nanosheets on MOFs-derived CoFe2O4 porous nanolayers to construct heterogeneous structural configurations for efficient and stable overall water splitting2024 · 21 citations
  3. 3Design of highly active and durable oxygen evolution catalyst with intrinsic chlorine inhibition property for seawater electrolysis2023 · 48 citations
  4. 4Facile synthesis of S-vacancy induced electrochemical HER activity in multilayered Sn doped MoS22022 · 32 citations
  5. 5Nanoclusters for photoelectrochemical water splitting: Bridging the photosensitizer and carrier transporter2023 · 47 citations