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Developing cost-effective, stable hydrogen evolution reaction (HER) electrocatalysts effective across pH-Universal remains challenging. This work reports a one-pot synthesized Pt-Fe-Ni-Mo-Co high-entropy alloy catalyst supported on Ketjen Black (HEA@KB) featuring stacked nanoparticles. By systematically tuning the iron coordination, the optimized HEA@KB demonstrates outstanding HER activity with low overpotentials of 12.44 mV in acidic (0.5 m HSO), 61.35 mV in alkaline (1 m KOH), and 55.71 mV in neutral (1 m PBS) electrolytes at 10 mA cm, significantly outperforming commercial 20 wt.% Pt/C catalysts. Density functional theory (DFT) calculations reveal that Fe incorporation modulates the electronic structure of Pt active sites by downshifting the d-band center, weakening Pt-H bonds, and facilitating hydrogen desorption via the Tafel step. Concurrently, Fe enhances the density of states near the Fermi level and optimizes the local Pt coordination environment, increasing the hydrogen-targeted charge flux (HTCF) that accelerates electron transfer in the Volmer step. Electron microscopy confirms that Fe tuning governs nanoparticle stacking, thereby expanding the electrochemically active surface area. This work elucidates the dual kinetic promotion of Volmer and Tafel steps through electronic and structural synergy, offering a promising avenue for designing efficient, durable, and low-Pt HER electrocatalysts.
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http://dx.doi.org/10.1002/smll.202507116 | DOI Listing |
Inorg Chem
September 2025
Department of Chemistry, Indiana University, 800 E. Kirkwood Avenue, Bloomington, Indiana 47405, United States.
The iron(I) dinitrogen complex PhB(AdIm)FeN, which is supported by a very bulky 1-adamantyl-substituted tris(carbene)borate ligand, reacts with equimolar CO at low temperature to afford the high spin ( = 3/2) complex PhB(AdIm)Fe(CO). This monocarbonyl complex reacts with additional CO to afford the low spin ( = 1/2) dicarbonyl complex PhB(AdIm)Fe(CO). By contrast, the high spin iron(I) tris(pyrazolyl)borate complex TpFe(CO) does not react with additional CO.
View Article and Find Full Text PDFAdv Sci (Weinh)
September 2025
Department of Bioengineering, Yildiz Technical University, Istanbul, 34722, Turkey.
Conductive nanocomposite hydrogels (CNHs) represent a promising tool in neural tissue engineering, offering tailored electroactive microenvironments to address the complex challenges of neural repair. This systematic scoping review, conducted in accordance with PRISMA-ScR guidelines, synthesizes recent advancements in CNH design, functionality, and therapeutic efficacy for central and peripheral nervous system (CNS and PNS) applications. The analysis of 125 studies reveals a growing emphasis on multifunctional materials, with carbon-based nanomaterials (CNTs, graphene derivatives; 36.
View Article and Find Full Text PDFActa Crystallogr E Crystallogr Commun
September 2025
College of Materials Science and Opto-electronic Technology University of Chinese Academy of Sciences, Huairou Beijing 101408 People's Republic of China.
The title complex, [Fe(CHN)(CHN)]·3CH, possesses inversion symmetry with the iron(II) atom located on a center of symmetry. The metal atom is coordinated in a symmetric octa-hedral geometry by four pyrrole N atoms of the porphyrin ligand in the equatorial plane and two N atoms of 1-methyl-imidazole ligands in the axial sites; the complex crystallizes with three toluene solvent mol-ecules. The average Fe-N (N is a porphyrin N atom) bond length is 1.
View Article and Find Full Text PDFWater Res
September 2025
State Key Laboratory of Soil Pollution Control and Safety, Department of Environmental Science, Zhejiang University, Hangzhou 310058, China; Future Environment Laboratory, Innovation Center of Yangtze River Delta, Zhejiang University, Jiaxing 314100, China. Electronic address:
Accelerating the rate-limiting surface Fe(III)/Fe(II) redox cycling is pivotal for efficient iron-mediated Fenton-like decontamination, yet conventional reductants (e.g., toxic hydroxylamine, thiosulfate) suffer from secondary toxicity, self-quenching, and heavy metal leaching.
View Article and Find Full Text PDFAdv Mater
September 2025
School of Materials Science and Chemical Engineering, Harbin University of Science and Technology, Harbin, 150080, China.
The polysulfide shuttling and sluggish sulfur redox kinetics hinder the commercialization of lithium-sulfur (Li-S) batteries. Herein, the fabrication of phosphorus (P)-doped iron telluride (FeTe) nanoparticles with engineered Te vacancies anchored on nitrogen (N)-doped carbon (C) (P-FeTe@NC) is presented as a multifunctional sulfur host. Theoretical and experimental analyses show that Te vacancies create electron-deficient Fe sites, which chemically anchor polysulfides through enhanced Fe─S covalent interactions.
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