Results 221 to 230 of about 121,814 (291)
Molecular Interfacial Chelation Enables Wide‐Temperature Aqueous Zinc‐Ion Batteries
This study introduces a chelating additive for wide‐temperature aqueous zinc‐ion batteries. Methionine‐chelated zinc adsorb onto the Zn(002) plane and release Zn2+ in situ, forming a zinc‐ion‐rich buffer reservoir at the electrode/electrolyte interface, enabling aqueous zinc‐ion batteries to exhibit stable cycling performance over the temperature range
Chunpeng Ruan +10 more
wiley +1 more source
As a metalloid with broad prospects in advanced applications, Te has not been fully clarified in terms of its intricate electrochemical behaviors across varied systems. This review systematically integrates fundamental electrochemical mechanisms, reaction kinetics identifications, and device application insights, establishing a comprehensive framework ...
Meng Zhang +6 more
wiley +1 more source
This study investigates the dynamic electrostatic shielding effect driven by competitive cation adsorption and its role in stabilizing zinc anodes for aqueous zinc metal batteries. The preferential adsorption of R+ cations, particularly K+, effectively rearranges the inner Helmholtz layer, modulates the electric field distribution, and weakens zinc ...
Ziang Wu +9 more
wiley +1 more source
Harnessing Thin‐Film Solid‐State Electrolytes: Enabling Breakthroughs in All‐Solid‐State Batteries
Schematic illustration highlighting the advantages of transitioning from traditional thick solid‐state electrolytes (SSEs) to thin‐film SSEs. Thinning the electrolyte enables higher ionic conductivity, reduced interfacial polarization, improved flexibility, compact electrode contact, and enhanced energy density, offering a promising pathway toward high‐
Yitao He +3 more
wiley +1 more source
Unlocking Ammonium‐Ion Storage Capability of MoS2 via Synergistic Molecular Engineering Strategies
The multiple molecular engineering strategies are simultaneously adopted to endow MoS2 with expanded interlayer distance, abundant active sites and strengthened structural stability. Benefitting from the synergistic effects of phase engineering, doping engineering, and structural engineering strategies, the proposed 1T‐O‐MoS2@HCSs exhibits ...
Kang Zhang +9 more
wiley +1 more source
A critical overview of electrolyte engineering for conversion‐type cathodes in lithium metal batteries is presented. Advanced electrolyte systems are summarized with emphasis on Li+ solvation‐structure‐driven interfacial chemistry and electrochemical performance.
Yihan Qiu +3 more
wiley +1 more source
Perpendicularly Aligned Superionic Pathways Enable Pressure‐Less Solid‐State Lithium Batteries
A commentary on the recent work of Cheng et al. demonstrating that architectural engineering can decouple ion transport from mechanical compliance in composite solid electrolytes. Continuously aligned superionic pathways transform anisotropic ion conductors into efficient Li‐ion highways while maintaining mechanical adaptability, enabling pressure‐less
Yufan Peng, Jiale Xia, Jinping Liu
wiley +1 more source
This strategy employs an intermediate transitional fluorine‐doped gold layer (Au–F@Zn) to create a hierarchically synergistic interface (HSI) layer consisting of ZnF2 and Au interlayers. The ZnF2 interlayer effectively suppresses the hydrogen evolution reaction and corrosion while ensuring rapid Zn2+ transport and preventing direct contact between the ...
Ruhao Cui +7 more
wiley +1 more source
Activity Report of TOF-SIMS Working Group in SASJ on Mass Scale Calibration of TOF-SIMS
openaire +1 more source
This review critically assesses recent advances in electrolytes for magnesium‐sulfur batteries, encompassing non‐nucleophilic systems (chloride‐containing, chloride‐free, and polymer‐based) and nucleophilic counterparts. Key strategies, including anion design, solvation regulation, and interphase engineering, are highlighted.
Jinlong Hu +5 more
wiley +1 more source

