REFERENCES
1. Li, Z.; Tan, J.; Wang, Y.; et al. Building better aqueous Zn-organic batteries. Energy. Environ. Sci. 2023, 16, 2398-431.
2. Wang, Y.; Li, Q.; Hong, H.; et al. Lean-water hydrogel electrolyte for zinc ion batteries. Nat. Commun. 2023, 14, 3890.
3. Gourley, S. W.; Brown, R.; Adams, B. D.; Higgins, D. Zinc-ion batteries for stationary energy storage. Joule 2023, 7, 1415-36.
4. Cao, J.; Zhang, D.; Chanajaree, R.; et al. A low-cost separator enables a highly stable zinc anode by accelerating the de-solvation effect. Chem. Eng. J. 2024, 480, 147980.
5. Zong, Y.; He, H.; Wang, Y.; et al. Functionalized separator strategies toward advanced aqueous zinc-ion batteries. Adv. Energy. Mater. 2023, 13, 2300403.
6. Chen, J.; Zhao, W.; Jiang, J.; et al. Challenges and perspectives of hydrogen evolution-free aqueous Zn-ion batteries. Energy. Storage. Mater. 2023, 59, 102767.
7. Fang, G.; Zhou, J.; Pan, A.; et al. Recent advances in aqueous zinc-ion batteries. ACS. Energy. Lett. 2018, 3, 2480-501.
8. Heptonstall, P. J.; Gross, R. J. K. A systematic review of the costs and impacts of integrating variable renewables into power grids. Nat. Energy. 2021, 6, 72-83.
9. Chen, M.; Chen, J.; Zhou, W.; Han, X.; Yao, Y.; Wong, C. P. Realizing an all-round hydrogel electrolyte toward environmentally adaptive dendrite-free aqueous Zn-MnO2 batteries. Adv. Mater. 2021, 33, e2007559.
10. Xiao, D.; Lv, X.; Fan, J.; Li, Q.; Chen, Z. Zn-based batteries for energy storage. Energy. Mater. 2023, 3, 300007.
11. Liu, Z.; Cui, T.; Pulletikurthi, G.; et al. Dendrite-free nanocrystalline zinc electrodeposition from an ionic liquid containing nickel triflate for rechargeable Zn-based batteries. Angew. Chem. Int. Ed. 2016, 55, 2889-93.
12. Yin, Y.; Li, X. Review and perspectives on anodes in rechargeable aqueous zinc-based batteries. Renewables 2023, 1, 622-37.
13. Wang, S.; Yuan, C.; Chang, N.; et al. Act in contravention: a non-planar coupled electrode design utilizing “tip effect” for ultra-high areal capacity, long cycle life zinc-based batteries. Sci. Bull. 2021, 66, 889-96.
14. Cao, Q.; Pan, Z.; Gao, Y.; et al. Stable imprinted zincophilic Zn anodes with high capacity. Adv. Funct. Mater. 2022, 32, 2205771.
15. Xu, C.; Li, B.; Du, H.; Kang, F. Energetic zinc ion chemistry: the rechargeable zinc ion battery. Angew. Chem. Int. Ed. 2012, 51, 933-5.
16. Li, H.; Ma, L.; Han, C.; et al. Advanced rechargeable zinc-based batteries: recent progress and future perspectives. Nano. Energy. 2019, 62, 550-87.
17. Fu, J.; Cano, Z. P.; Park, M. G.; Yu, A.; Fowler, M.; Chen, Z. Electrically rechargeable zinc-air batteries: progress, challenges, and perspectives. Adv. Mater. 2017, 29.
18. Wu, B.; Wu, Y.; Lu, Z.; et al. A cation selective separator induced cathode protective layer and regulated zinc deposition for zinc ion batteries. J. Mater. Chem. A. 2021, 9, 4734-43.
19. Zeng, X.; Zhang, S.; Long, T.; et al. An amphipathic ionic sieve membrane for durable and dendrite-free zinc-ion batteries. Renewables 2024, 2, 52-60.
20. Hu, L.; Xiao, P.; Xue, L.; Li, H.; Zhai, T. The rising zinc anodes for high-energy aqueous batteries. EnergyChem 2021, 3, 100052.
21. Lu, K.; Zhang, H.; Song, B.; Pan, W.; Ma, H.; Zhang, J. Sulfur and nitrogen enriched graphene foam scaffolds for aqueous rechargeable zinc-iodine battery. Electrochim. Acta. 2019, 296, 755-61.
22. Zhang, Y.; Bi, S.; Niu, Z.; Zhou, W.; Xie, S. Design of Zn anode protection materials for mild aqueous Zn-ion batteries. Energy. Mater. 2022, 2, 200012.
23. Zhang, X.; Weng, H.; Miu, Y.; et al. Atomic-scale inorganic carbon additive with rich surface polarity and low lattice mismatch for zinc to boost Zn metal anode reversibility. Chem. Eng. J. 2024, 482, 148807.
24. Yang, J.; Yin, B.; Sun, Y.; et al. Zinc anode for mild aqueous zinc-ion batteries: challenges, strategies, and perspectives. Nano-Micro. Lett. 2022, 14, 42.
25. Nian, Q.; Wang, J.; Liu, S.; et al. Aqueous batteries operated at -50 °C. Angew. Chem. Int. Ed. 2019, 58, 16994-9.
26. Chen, T. Y.; Lin, T. J.; Vedhanarayanan, B.; Shen, H. H.; Lin, T. W. Optimization of acetamide based deep eutectic solvents with dual cations for high performance and low temperature-tolerant aqueous zinc ion batteries via tuning the ratio of co-solvents. J. Colloid. Interface. Sci. 2023, 629, 166-78.
27. Shi, Y.; Wang, R.; Bi, S.; Yang, M.; Liu, L.; Niu, Z. An anti-freezing hydrogel electrolyte for flexible zinc-ion batteries operating at -70 °C. Adv. Funct. Mater. 2023, 33, 2214546.
28. Samanta, P.; Ghosh, S.; Kundu, A.; Samanta, P.; Murmu, N. C.; Kuila, T. Recent progress on the performance of Zn-ion battery using various electrolyte salt and solvent concentrations. ACS. Appl. Electron. Mater. 2023, 5, 100-16.
29. Yang, F.; Yuwono, J. A.; Hao, J.; et al. Understanding H2 evolution electrochemistry to minimize solvated water impact on zinc-anode performance. Adv. Mater. 2022, 34, e2206754.
30. Liu, C.; Xie, X.; Lu, B.; Zhou, J.; Liang, S. Electrolyte strategies toward better zinc-ion batteries. ACS. Energy. Lett. 2021, 6, 1015-33.
31. Du, Y.; Li, Y.; Xu, B. B.; et al. Electrolyte salts and additives regulation enables high performance aqueous zinc ion batteries: a mini review. Small 2022, 18, e2104640.
32. Jin, Y.; Han, K. S.; Shao, Y.; et al. Stabilizing zinc anode reactions by polyethylene oxide polymer in mild aqueous electrolytes. Adv. Funct. Mater. 2020, 30, 2003932.
33. Sun, T.; Zheng, S.; Du, H.; Tao, Z. Synergistic effect of cation and anion for low-temperature aqueous zinc-ion battery. Nanomicro. Lett. 2021, 13, 204.
34. Zhang, N.; Dong, Y.; Jia, M.; et al. Rechargeable aqueous Zn-V2O5 battery with high energy density and long cycle life. ACS. Energy. Lett. 2018, 3, 1366-72.
35. Wang, N.; Yang, Y.; Qiu, X.; Dong, X.; Wang, Y.; Xia, Y. Stabilized rechargeable aqueous zinc batteries using ethylene glycol as water blocker. ChemSusChem 2020, 13, 5556-64.
36. Liu, S.; Zhang, R.; Mao, J.; Zhao, Y.; Cai, Q.; Guo, Z. From room temperature to harsh temperature applications: Fundamentals and perspectives on electrolytes in zinc metal batteries. Sci. Adv. 2022, 8, eabn5097.
37. Zhang, Q.; Xu, S.; Wang, Y.; Dou, Q.; Sun, Y.; Yan, X. Temperature-dependent structure and performance evolution of “water-in-salt” electrolyte for supercapacitor. Energy. Storage. Mater. 2023, 55, 205-13.
38. Li, X.; Ji, C.; Shen, J.; et al. Amorphous heterostructure derived from divalent manganese borate for ultrastable and ultrafast aqueous zinc ion storage. Adv. Sci. 2023, 10, e2205794.
39. Ma, L.; Chen, S.; Li, N.; et al. Hydrogen-free and dendrite-free all-solid-state Zn-ion batteries. Adv. Mater. 2020, 32, e1908121.
40. Edmondson, G. K.; Benisek, L. 27-solvent-applied flame-resist treatments for wool, cotton, and wool-cotton blends. J. Text. Inst. 1977, 68, 230-9.
41. Kao-Ian, W.; Sangsawang, J.; Gopalakrishnan, M.; et al. Preinserted ammonium in MnO2 to enhance charge storage in dimethyl sulfoxide based zinc-ion batteries. ACS. Appl. Mater. Interfaces. 2024, 16, 56926-34.
42. Wang, Z.; Bai, L.; Fan, H.; Wang, Y.; Liu, W. Solvation strategies in various electrolytes for advanced zinc metal anode. J. Energy. Chem. 2024, 94, 740-57.