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Commercial lithium-ion batteries using organic solvent-based liquid electrolytes (LEs) face safety issues, including risks of fire and explosion. As a safer alternative, solid-state electrolytes are being extensively explored to replace these organic solvent-based LEs. Among various solid electrolyte options, polymer electrolytes offer advantages such as flexibility and ease of processing. However, they present challenges like low ionic conductivity at room temperature and reduced stability at elevated temperatures compared with other solid electrolytes. In this study, ionic liquid-based composite polymer electrolytes (CPEs) with exceptional thermal stability are synthesized via in situ polymerization. The in situ polymerized CPEs exhibit high ionic conductivity, reaching up to 1.38 mS cm at 25 °C, and show improved interfacial contact with the electrode. These CPEs demonstrate robust thermal stability, withstanding thermal decomposition at 350 °C, and maintaining nearly the same initial cell capacity, even after being stored at elevated temperatures above 120 °C. The cell using CPEs also had a broad electrochemical stability window of 5 V, making it suitable for high-voltage electrode applications. Additionally, CPEs showed a high lithium-ion transference number ( = 0.5), and the NCM 811/CPE/Li cell showed a substantial discharge capacity of 210 mA h g at 0.1 C at 25 °C. Furthermore, the battery cell retained a 66% capacity after 100 cycles at a 0.3 C-rate compared to the initial value. The results suggest that the developed CPE has promising thermal stability, cell performance, and cycle life for future applications in lithium-ion rechargeable batteries.
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http://dx.doi.org/10.1021/acsomega.5c05199 | DOI Listing |
Lasers Med Sci
September 2025
Laser Research Center of Dentistry, Dentistry Research Institute, Tehran University of Medical Sciences, Tehran, Iran.
Microbial contamination of absorbable collagen membranes used in guided bone regeneration (GBR) may compromise healing outcomes. This study aimed to investigate whether the minimum inhibitory concentration (MIC) of hydrogen peroxide (HO) can improve the antibacterial effect of indocyanine green (ICG)-mediated antimicrobial photodynamic therapy (PDT) on absorbable collagen membranes while reducing the need for high HO concentrations. A laboratory-based model was developed using Streptococcus sanguinis and Staphylococcus aureus.
View Article and Find Full Text PDFDalton Trans
September 2025
Laboratory for New Ceramics, Department of Ceramic Engineering, National Institute of Technology Rourkela, Rourkela, Odisha 769008, India.
Polymer-derived ceramics are a versatile class of multifunctional materials synthesized the high-temperature treatment of a preceramic polymer. In this work, we report the synthesis of a vanadium carbide-embedded carbonaceous hybrid by pyrolyzing a modified preceramic polymer incorporating vanadium acetylacetonate in a polysilsesquioxane followed by hydrofluoric acid etching. The structural and microscopic characterisation confirmed the uniform distribution of nanoparticulate vanadium carbide in the matrix.
View Article and Find Full Text PDFNaturwissenschaften
September 2025
Department of Biomedical Engineering, Sri Sivasubramaniya Nadar College of Engineering, Kalavakkam, 603110, Tamil Nadu, India.
Wounds with extensive tissue damage are highly susceptible for microbial infections delaying the process of wound healing. Currently, biomaterials with therapeutic molecules emerged as key players in wound repairing. This work developed a novel collagen-based hydrogel loaded with allicin and silver nanoparticles.
View Article and Find Full Text PDFSmall Methods
September 2025
Hebei Key Laboratory of Optic-Electronic Information and Materials, National & Local Joint Engineering Laboratory of New Energy Photoelectric Devices, College of Physics, Science and Technology, Hebei University, Baoding, 071002, China.
As a new generation of high-energy-density energy storage system, solid-state aluminum-ion batteries have attracted much attention. Nowadays polyethylene oxide (PEO)-based electrolytes have been initially applied to Lithium-ion batteries due to their flexible processing and good interfacial compatibility, their application in aluminum-ion batteries still faces problems. To overcome the limitations in aluminum-ion batteries-specifically, strong Al coordination suppressing ion dissociation, high room-temperature crystallinity, and inadequate mechanical strength-this study develops a blended polymer electrolyte (BPE) of polypropylene carbonate (PPC) and PEO.
View Article and Find Full Text PDFNanoscale
September 2025
Polymer Electrolytes and Materials Group (PEMG), Department of Physics, Indian Institute of Technology Jodhpur, Karwar, Rajasthan 342030, India.
Understanding ion transport mechanisms in sodium ion-based polymer electrolytes is critical, considering the emergence of sodium ion electrolyte technologies as sustainable alternatives to lithium-based systems. In this paper, we employ all-atom molecular dynamics simulations to investigate the salt concentration () effects on ionic conductivity () mechanisms in sodium hexafluorophosphate (NaPF) in polyethylene oxide (PEO) electrolytes. Sodium ions exhibit ion solvation shell characteristics comparable to those of lithium-based polymer electrolytes, with similar anion coordination but more populated oxygen coordination in the polymer matrix.
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