Open Access
Issue
Natl Sci Open
Volume 5, Number 2, 2026
Article Number 20250067
Number of page(s) 13
Section Materials Science
DOI https://doi.org/10.1360/nso/20250067
Published online 02 December 2025
  • Xu C, Peng B, Yang W, et al. High energy density lithium battery systems: From key cathode materials to pouch cell design. Chem Soc Rev 2025; 54: 10245-10303. [Article] [Google Scholar]
  • Chae S, Ko M, Kim K, et al. Confronting issues of the practical implementation of Si anode in high-energy lithium-ion batteries. Joule 2017; 1: 47-60. [Article] [Google Scholar]
  • Xie Y, Huang Y, Zhang Y, et al. Surface modification using heptafluorobutyric acid to produce highly stable Li metal anodes. Nat Commun 2023; 14: 2883. [Article] [Google Scholar]
  • Lin X, Xu S, Tong Y, et al. A self-healing polymerized-ionic-liquid-based polymer electrolyte enables a long lifespan and dendrite-free solid-state Li metal batteries at room temperature. Mater Horiz 2023; 10: 859-868. [Article] [Google Scholar]
  • Liang W, Zhao K, Ouyang L, et al. A review of functional group selection and design strategies for gel polymer electrolytes for metal batteries. Mater Sci Eng-R-Rep 2025; 164: 100973. [Article] [Google Scholar]
  • Meng YS, Srinivasan V, Xu K. Designing better electrolytes. Science 2022; 378: eabq3750. [Article] [Google Scholar]
  • Niu H, Wang L, Guan P, et al. Recent advances in application of ionic liquids in electrolyte of lithium ion batteries. J Energy Storage 2021; 40: 102659. [Article] [Google Scholar]
  • Guo JC, Chai CZ, Wang YH, et al. A fire-safe Li metal battery via smart gas management. Proc Natl Acad Sci USA 2025; 122: e2501549122. [Article] [Google Scholar]
  • Zhang C, Zhao L, Li F, et al. Optimizing the electron density of PVDF-HFP-based solid polymer electrolyte by donor-acceptor COF toward high-performance solid-state lithium metal batteries. Adv Mater 2025; 37: e13427. [Article] [Google Scholar]
  • Asl HY, Manthiram A. Reining in dissolved transition-metal ions. Science 2020; 369: 140-141. [Article] [Google Scholar]
  • Kalnaus S, Dudney NJ, Westover AS, et al. Solid-state batteries: The critical role of mechanics. Science 2023; 381: eabg5998. [Article] [Google Scholar]
  • Lv Q, Li L, Zhang X, et al. Developing dynamic ion transport channels in polymer solid electrolytes for high-performance lithium metal batteries. J Am Chem Soc 2025; 147: 27611-27623. [Article] [Google Scholar]
  • Aranda K, Manthiram A. Influence of anode reactivity and chemical crossover on the formation of cathode-electrolyte interphase in high-nickel layered oxide cathodes. Adv Energy Mater 2025; : e02617. [Article] [Google Scholar]
  • Huang Z, Lyu H, Greenburg LC, et al. Stabilizing lithium-metal electrodes with polymer coatings. Nat Energy 2025; 10: 811-823. [Article] [Google Scholar]
  • Wang Y, Wu Z, Azad FM, et al. Fluorination in advanced battery design. Nat Rev Mater 2023; 9: 119-133. [Article] [Google Scholar]
  • Wang Y, Li Z, Hou Y, et al. Emerging electrolytes with fluorinated solvents for rechargeable lithium-based batteries. Chem Soc Rev 2023; 52: 2713-2763. [Article] [Google Scholar]
  • Tang L, Chen B, Zhang Z, et al. Polyfluorinated crosslinker-based solid polymer electrolytes for long-cycling 4.5 V lithium metal batteries. Nat Commun 2023; 14: 2301-2311. [Article] [Google Scholar]
  • Cai T, Ma Z, Zhao F, et al. Interfacial chemistry of plasticizer to invoke high-performance silicon anodes for quasi-solid lithium-ion batteries. Adv Funct Mater 2025; : e15495. [Article] [Google Scholar]
  • Kuo SW, Chang FC. POSS related polymer nanocomposites. Prog Polym Sci 2011; 36: 1649-1696. [Article] [Google Scholar]
  • Dondoni A, Marra A. Recent applications of thiol-ene coupling as a click process for glycoconjugation. Chem Soc Rev 2012; 41: 573-586. [Article] [Google Scholar]
  • Hu J, Wang W, Zhou B, et al. Click chemistry in lithium-metal batteries. Small 2024; 20: 2306622. [Article] [Google Scholar]
  • Li M, Wang C, Davey K, et al. Recent progress in electrolyte design for advanced lithium metal batteries. SmartMat 2023; 4: e1185. [Article] [Google Scholar]
  • Li Y, Ni Z, Geng J, et al. Advancements in electrolytes: From liquid to solid for low-cost and high-energy-density micro-sized silicon-based batteries. Adv Energy Mater 2025; 15: 2502284. [Article] [Google Scholar]
  • Xu W, Dong W, Lin J, et al. Optimization design of fluoro-cyanogen copolymer electrolyte to achieve 4.7 V high-voltage solid lithium metal battery. Adv Sci 2024; 11: 2400466. [Article] [Google Scholar]
  • Han C, Chen G, Ma Y, et al. Strategies towards inhibition of aluminum current collector corrosion in lithium batteries. Energy Mater 2023; 3: 300052. [Article] [Google Scholar]
  • Adenusi H, Chass GA, Passerini S, et al. Lithium batteries and the solid electrolyte interphase (SEI)—Progress and outlook. Adv Energy Mater 2023; 13: 2203307. [Article] [Google Scholar]
  • Wang A, Kadam S, Li H, et al. Review on modeling of the anode solid electrolyte interphase (SEI) for lithium-ion batteries. npj Comput Mater 2018; 4: 15. [Article] [Google Scholar]
  • Liu X, Li S, Yuan C, et al. Probing the heterogeneous nature of LiF in solid-electrolyte interphases. Nature 2025; 646: 102-107. [Article] [Google Scholar]
  • Willgert M, Kjell MH, Lindbergh G, et al. New structural lithium battery electrolytes using thiol-ene chemistry. Solid State Ion 2013; 236: 22-29. [Article] [Google Scholar]
  • Li Z, Wang T, Zhong L, et al. Ultrathin thiol-ene crosslinked polymeric electrolyte for solid-state and high-performance lithium metal batteries. Sci China Mater 2023; 66: 1332-1340. [Article] [Google Scholar]
  • Guan D, Yuan X, Li J, et al. Molecular-locking strategy enables volatile ether organic electrolytes to achieve high-energy lithium battery. Angew Chem Int Ed 2025; 64: e202517480. [Article] [Google Scholar]
  • Lin J, Li Y, Wang Y, et al. POSS-crosslinked gel polymer electrolytes enabling low-temperature tolerant dye-sensitized solar cells. Electrochim Acta 2025; 513: 145596. [Article] [Google Scholar]
  • Li Q, Liu G, Chen Y, et al. Electrolyte solvent-ion configuration deciphering lithium plating/stripping chemistry for high-performance lithium metal battery. Adv Funct Mater 2025; 35: 2420327. [Article] [Google Scholar]
  • Dai C, Weng M, Cai B, et al. Ion-conductive crystals of poly(vinylidene fluoride) enable the fabrication of fast-charging solid-state lithium metal batteries. Energy Environ Sci 2024; 17: 8243-8253. [Article] [Google Scholar]
  • Adams BD, Zheng J, Ren X, et al. Accurate determination of coulombic efficiency for lithium metal anodes and lithium metal batteries. Adv Energy Mater 2018; 8: 1702097. [Article] [Google Scholar]

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