REFERENCES

1. Zhao, Z.; Hou, N.; Hong, Z.; Ming, S.; Lu, J.; Chen, W. Kinetic insights for high-rate and low-temperature ammonium-ion batteries/supercapacitors. Energy. Storage. Materi. 2025, 81, 104539.

2. Ortiz-Vitoriano, N.; Drewett, N. E.; Gonzalo, E.; Rojo, T. High performance manganese-based layered oxide cathodes: overcoming the challenges of sodium ion batteries. Energy. Environ. Sci. 2017, 10, 1051-74.

3. Kubota, K.; Komaba, S. Review—practical issues and future perspective for Na-ion batteries. J. Electrochem. Soc. 2015, 162, A2538-50.

4. Weldegebrieal, G. K.; Tangthuam, P.; Lao-Ian, W.; et al. Sodium-ion batteries: from conventional to anode-free configurations: materials, mechanisms, and future prospects. J. Energy. Storage. 2025, 135, 118386.

5. Liu, Q.; Hu, Z.; Chen, M.; et al. The cathode choice for commercialization of sodium-ion batteries: layered transition metal oxides versus prussian blue analogs. Adv. Funct. Mater. 2020, 30, 1909530.

6. Liu, Q.; Hu, Z.; Chen, M.; et al. Recent progress of layered transition metal oxide cathodes for sodium-ion batteries. Small 2019, 15, 1805381.

7. Dai, P.; Shi, C.; Huang, Z.; et al. A new film-forming electrolyte additive in enhancing the interface of layered cathode and cycling life of sodium ion batteries. Energy. Storage. Mater. 2023, 56, 551-61.

8. Wang, J.; Zhu, Y.; Su, Y.; et al. Routes to high-performance layered oxide cathodes for sodium-ion batteries. Chem. Soc. Rev. 2024, 53, 4230-301.

9. Zhou, L.; Wang, H.; Cao, L.; et al. Synergetic phase transition suppression and air-stability engineering in layered cathode materials for sodium ion batteries. Chem. Eng. J. 2025, 526, 170700.

10. Takada, K.; Yamada, Y.; Watanabe, E.; et al. Unusual passivation ability of superconcentrated electrolytes toward hard carbon negative electrodes in sodium-ion batteries. ACS. Appl. Mater. Interfaces. 2017, 9, 33802-9.

11. Lu, H.; Chen, X.; Jia, Y.; et al. Engineering Al2O3 atomic layer deposition: enhanced hard carbon-electrolyte interface towards practical sodium ion batteries. Nano. Energy. 2019, 64, 103903.

12. Jo, J. H.; Choi, J. U.; Konarov, A.; et al. Sodium-ion batteries: building effective layered cathode materials with long-term cycling by modifying the surface via sodium phosphate. Adv. Funct. Mater. 2018, 28, 1705968.

13. Lin, Y.; Jin, X.; Gao, S.; et al. Improved interface construction on anode and cathode for Na-ion batteries using ultralow-concentration electrolyte containing dual-additives. Chem. A. Eur. J. 2024, 30, e202303741.

14. Jayakumar, R.; Chak, C. M.; Shipitsyn, V.; et al. Ethylene sulfate-enabled stable interphases in fluorinated ether electrolytes for high-performance sodium-ion batteries. J. Power. Sources. 2026, 662, 238753.

15. Ponrouch, A.; Marchante, E.; Courty, M.; Tarascon, J.; Palacín, M. R. In search of an optimized electrolyte for Na-ion batteries. Energy. Environ. Sci. 2012, 5, 8572.

16. Wang, S.; Zhang, J.; Hua, W.; et al. Solvation-enhanced electrolyte on layered oxide cathode tailoring even and stable CEI for durable sodium storage. Carb. Neutr. 2023, 2, 20.

17. Zhou, Z.; Qian, Y.; Gao, J.; et al. A nonflammable carbonate-phosphate hybrid electrolyte enabling high-temperature sodium-ion full batteries. Energy. Storage. Mater. 2026, 89, 105229.

18. Li, Q.; Jiao, S.; Luo, L.; et al. Wide-temperature electrolytes for lithium-ion batteries. ACS. Appl. Mater. Interfaces. 2017, 9, 18826-35.

19. Fu, J.; Li, S.; Luo, C.; et al. Design principles for fluoroethylene carbonate additive-electrode compatibility in nanoporous sugarcane bagasse-based hard carbon sodium ion anodes. J. Mater. Chem. A. 2026, 14, 10929-39.

20. Huang, J.; Liu, J.; He, J.; et al. Optimizing electrode/electrolyte interphases and Li-ion flux/solvation for lithium-metal batteries with qua-functional heptafluorobutyric anhydride. Angew. Chem. Int. Ed. 2021, 60, 20717-22.

21. Tiwari, R.; Kumar, D.; Verma, D. K.; et al. Fundamental chemical and physical properties of electrolytes in energy storage devices: a review. J. Energy. Storage. 2024, 81, 110361.

22. Bouguern, M. D.; M R, A. K.; Zaghib, K. The critical role of interfaces in advanced Li-ion battery technology: a comprehensive review. J. Power. Sources. 2024, 623, 235457.

23. Chang, M.; Cheng, F.; Zhang, W.; et al. Antioxidant layer enables chemically stable cathode-electrolyte interface towards durable and safe Li-ion batteries. Energy. Storage. Mater. 2023, 61, 102872.

24. Wu, D.; Zhu, C.; Wang, H.; et al. Mechanically and thermally stable cathode electrolyte interphase enables high-temperature, high-voltage Li||LiCoO2 batteries. Angew. Chem. Int. Ed. 2024, 63, e202315608.

25. Cheng, H.; He, Y. Temperature-dependent evolution of the CEI on graphite electrodes and its impact on dual-ion battery performance. Chem. Phys. Lett. 2026, 889, 142711.

26. Yang, Z.; Liu, F.; Yu, T.; et al. Performance improvement of O3-type Na(NiFeMn)1/3O2 cathodes by tannic acid-derived carbon coating. J. Electroanal. Chem. 2025, 990, 119182.

27. Goodenough, J.; Kim, Y. Challenges for rechargeable batteries. J. Power. Sources. 2011, 196, 6688-94.

28. Kondou, S.; Sakashita, Y.; Morinaga, A.; et al. Concentrated nonaqueous polyelectrolyte solutions: high Na-ion transference number and surface-tethered polyanion layer for sodium-metal batteries. ACS. Appl. Mater. Interfaces. 2023, 15, 11741-55.

29. Xia, B.; Ye, B.; Cao, J. Polarization voltage characterization of lithium-ion batteries based on a lumped diffusion model and joint parameter estimation algorithm. Energies 2022, 15, 1150.

30. Adebanjo, I. T.; Eko, J.; Agbeyegbe, A. G.; et al. A comprehensive review of lithium-ion battery components degradation and operational considerations: a safety perspective. Energy. Adv. 2025, 4, 820-77.

31. Dai, H.; Gomes, L.; Maxwell, D.; et al. Exploring the role of an electrolyte additive in suppressing surface reconstruction of a Ni-rich NMC cathode at ultrahigh voltage via enhanced in situ and operando characterization methods. ACS. Appl. Mater. Interfaces. 2024, 16, 8639-54.

32. Shi, J.; Ding, L.; Wan, Y.; et al. Achieving long-cycling sodium-ion full cells in ether-based electrolyte with vinylene carbonate additive. J. Energy. Chem. 2021, 57, 650-5.

33. Kubot, M.; Balke, L.; Scholz, J.; et al. High-voltage instability of vinylene carbonate (VC): impact of formed poly-VC on interphases and toxicity. Adv. Sci. 2023, 11, 2305282.

34. Lee, W. J.; Prasanna, K.; Jo, Y. N.; Kim, K. J.; Kim, H. S.; Lee, C. W. Depth profile studies on nickel rich cathode material surfaces after cycling with an electrolyte containing vinylene carbonate at elevated temperature. Phys. Chem. Chem. Phys. 2014, 16, 17062-71.

35. Ota, H.; Sakata, Y.; Inoue, A.; Yamaguchi, S. Analysis of vinylene carbonate derived SEI layers on graphite anode. J. Electrochem. Soc. 2004, 151, A1659.

36. Yu, Y.; Ning, D.; Li, Q.; et al. Revealing the anionic redox chemistry in O3-type layered oxide cathode for sodium-ion batteries. Energy. Storage. Mater. 2021, 38, 130-40.

37. Liu, K.; Tan, S.; Moon, J.; et al. Insights into the enhanced cycle and rate performances of the F-substituted P2-type oxide cathodes for sodium-ion batteries. Adv. Energy. Mater. 2020, 10, 2000135.

38. Li, H.; Ma, Q.; Yuan, Y.; et al. Mesoporous N,S-rich carbon hollow nanospheres controllably prepared from poly(2-aminothiazole) with ultrafast and highly durable potassium storage. Adv. Funct. Mater. 2023, 34, 2301987.

39. Ghasemiahangarani, P.; Farhan, G.; Del, Mundo. D.; Schoetz, T. Charge storage mechanisms in batteries and capacitors: a perspective of the electrochemical interface. Adv. Energy. Mater. 2024, 15, 2404704.

40. Eum, D.; Kim, B.; Song, J.; et al. Coupling structural evolution and oxygen-redox electrochemistry in layered transition metal oxides. Nat. Mater. 2022, 21, 664-72.

41. Yu, R.; Wang, C.; Duan, H.; et al. Manipulating charge-transfer kinetics of lithium-rich layered oxide cathodes in halide all-solid-state batteries. Adv. Mater. 2022, 35, 2207234.

42. Lee, Y.; Lee, J.; Kim, H.; Kang, K.; Choi, N. Highly stable linear carbonate-containing electrolytes with fluoroethylene carbonate for high-performance cathodes in sodium-ion batteries. J. Power. Sources. 2016, 320, 49-58.

43. Chen, G.; Ya, Y.; Li, Y.; et al. Stabilizing high-voltage operation of layered oxide cathodes through ionic interdiffusion-triggered surface reinforcement for sodium-ion batteries. J. Energy. Chem. 2026, 116, 409-20.

44. Singla, A.; Naik, K. G.; Vishnugopi, B. S.; Mukherjee, P. P. Heterogeneous solid electrolyte interphase interactions dictate interface instability in sodium metal electrodes. Adv. Sci. 2024, 11, 2404887.

45. Yang, H.; Zeng, Y.; Li, W.; Yang, Y.; Zhao, J. The importance of fabricating hard carbon-based full cells to overcome sodium metal anode limitations in evaluating high-mass-loading cathodes. ACS. Energy. Lett. 2025, 10, 2868-76.

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