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"Mapping the design of electrolyte additive for stabilizing zinc anode " by Huaizheng Ren, Sai Li et al.

Aqueous Zn-ion batteries (ZIBs) have garnered significant interest as an important solution for large-scale energy storage due to their enhanced safety and affordability. Nevertheless, dendrites formation and side reactions faced by Zn anodes have hindered their commercial development. Electrolyte additives, among various methods to stabilize Zn anodes, have emerged as the most commercially viable technique due to their low dosage and potent effects, offering substantial economic benefits. While massive literature reviews have explored strategies for comprehensive Zn anode stabilization, there remains a lack of systematic investigation into electrolyte additives. This review commences by addressing the challenges and root causes faced by Zn anodes, providing essential context for understanding the significance of electrolyte additives. It then proceeds to offer an overview of characterization techniques applied in the analysis of electrolyte additives mechanism. Subsequently, the revie ....

Aqueous Zn Ion Batteries , Electrolyte Additive , Hydrogen Evolution Reaction , N Anodes , N Dendrites ,

MXene-Supported PtCo Catalysts for Hydrogen Evolution

In a recent paper published in Frontiers in Energy, researchers from Beijing University of Technology developed a new hydrogen production catalyst using MXene material and a small amount of platinum and cobalt. ....

Ling Zhou , Mxene Ptco , Yuhong Jin , Ptco Mxene , Zhao Wang , Frontiers In Energy , Hydrogen Evolution Reaction , University Of Technology , Ptco Catalysts For Hydrogen Evolution Schematic , Chinese Academy Of Sciences , Beijing University , Supported Ptco Catalysts , Hydrogen Evolution , Kai Ling Zhou , Deep Sea Science , Chinese Academy ,

"Stabilizing Low-Valence Single Atoms by Constructing Metalloid Tungste" by Luqi Wang, Zipeng Xu et al.

Designing novel single-atom catalysts (SACs) supports to modulate the electronic structure is crucial to optimize the catalytic activity, but rather challenging. Herein, a general strategy is proposed to utilize the metalloid properties of supports to trap and stabilize single-atoms with low-valence states. A series of single-atoms supported on the surface of tungsten carbide (M-WCx, M=Ru, Ir, Pd) are rationally developed through a facile pyrolysis method. Benefiting from the metalloid properties of WCx, the single-atoms exhibit weak coordination with surface W and C atoms, resulting in the formation of low-valence active centers similar to metals. The unique metal-metal interaction effectively stabilizes the low-valence single atoms on the WCx surface and improves the electronic orbital energy level distribution of the active sites. As expected, the representative Ru-WCx exhibits superior mass activities of 7.84 and 62.52 A mgRu−1 for the hydrogen oxidation and evolution reactions ( ....

Hydrogen Evolution Reaction , Hydrogen Oxidation Reaction , Low Valence , Metal Carbides , Single Atom Catalysts ,

Gold Nanoclusters: Catalysts For Green Hydrogen Production

Gold nanoclusters are emerging as a potential solution to enhance the efficiency of hydrogen production through water electrolysis, a crucial process. ....

Zhenghua Tang , Energy Research Institute , Hydrogen Evolution Reaction , China University Of Technology , New Energy Research Institute , South China University , More Commercially , Environmentally Sustainable ,