Deakin University-ko ikertzaileekin lankidetzan egindako argitalpenak (554)

2024

  1. A Novel High-Performing Ammonium Cation-Based Ionic Liquid Electrolyte for Advanced Lithium Metal Batteries

    Journal of Physical Chemistry C, Vol. 128, Núm. 33, pp. 13694-13701

  2. All-Polymer Nanocomposite as Salt-Free Solid Electrolyte for Lithium Metal Batteries

    ACS Polymers Au, Vol. 4, Núm. 1, pp. 77-85

  3. Biobased Acrylic Latexes/Sodium Carboxymethyl Cellulose Aqueous Binders for Lithium-Ion NMC 811 Cathodes

    ACS Applied Polymer Materials, Vol. 6, Núm. 2, pp. 1236-1244

  4. Combining Molecular Simulations with Modern Experiments to Design Ionic Liquid-Based Battery Electrolytes

    Topics in Applied Physics (Springer Science and Business Media Deutschland GmbH), pp. 511-526

  5. Composite lithium conducting solid electrolytes based on zwitterionic plastic crystals and polymer nanoparticles

    Materials Advances, Vol. 5, Núm. 7, pp. 2841-2850

  6. Current Trends and Perspectives of Polymers in Batteries

    Macromolecules, Vol. 57, Núm. 7, pp. 3013-3025

  7. Developing a High-Performing Spinel LiMn2O4 Cathode Material with Unique Morphology, Fast Cycling and Scaled Manufacture

    Batteries and Supercaps, Vol. 7, Núm. 6

  8. Dimensionality Control of Li Transport by MOFs Based Quasi-Solid to Solid Electrolyte (Q-SSEs) for Li−Metal Batteries

    Batteries and Supercaps

  9. Effect of the curing agent DETA and its interaction with a rare earth carboxylate as corrosion inhibitor in a hybrid silica-epoxy formulation

    Journal of Coatings Technology and Research

  10. Enabling room temperature solid-state lithium batteries by blends of copolymers and ionic liquid electrolytes

    Journal of Power Sources, Vol. 621

  11. Enhancing Lithium-Ion Battery Performance with Alumina-Coated Separators: Exploring the Potential of Different Alumina Particle Sizes, Coating Techniques, and Calendering

    Batteries and Supercaps, Vol. 7, Núm. 8

  12. Exploring Sustainable Coating Solutions for Applications in Highly Corrosive Environments

    Coatings, Vol. 14, Núm. 5

  13. Fluorination in advanced battery design

    Nature Reviews Materials, Vol. 9, Núm. 2, pp. 119-133

  14. Impact of optimised quasi-block structures on the properties of polymer electrolytes

    Physical Chemistry Chemical Physics, Vol. 26, Núm. 21, pp. 15742-15750

  15. Innovative Strategy for Developing PEDOT Composite Scaffold for Reversible Oxygen Reduction Reaction

    Journal of Physical Chemistry Letters, Vol. 15, Núm. 18, pp. 4851-4857

  16. Insights into the Carbon Dioxide Separation Performance of Bis(trifluoromethylsulfonyl)imide-based Plastic Crystal Composite Membranes with Fluorinated Polar Polymers

    ChemSusChem, Vol. 17, Núm. 6

  17. Interfacial Modification of Lithium Metal Anode by Boron Nitride Nanosheets

    ACS Nano, Vol. 18, Núm. 4, pp. 3531-3541

  18. Investigating the role of mixed-cation ionic liquid electrolytes in sodium battery efficiency and stability

    Materials Advances, Vol. 5, Núm. 17, pp. 6899-6909

  19. Ionic polymer absorbents inspired by deep eutectic solvents to recover cobalt and nickel

    New Journal of Chemistry, Vol. 48, Núm. 33, pp. 14672-14683

  20. Lithium Diffusion-Efficient Ionogels as Polymer Solid Electrolyte for Next-Gen Lithium-Ion Batteries

    Energy and Environmental Materials