REFERENCES
1. Xiao J, Shi F, Glossmann T, Burnett C, Liu Z. From laboratory innovations to materials manufacturing for lithium-based batteries. Nat Energy 2023;8:329-39.
2. Liu J, Bao Z, Cui Y, et al. Pathways for practical high-energy long-cycling lithium metal batteries. Nat Energy 2019;4:180-6.
3. Guo Y, Li H, Zhai T. Reviving lithium-metal anodes for next-generation high-energy batteries. Adv Mater 2017;29:1700007.
4. Cheng XB, Zhang R, Zhao CZ, Zhang Q. Toward safe lithium metal anode in rechargeable batteries: a review. Chem Rev 2017;117:10403-73.
5. Genieser R, Ferrari S, Loveridge M, et al. Lithium ion batteries (NMC/graphite) cycling at 80 °C: different electrolytes and related degradation mechanism. J Power Sources 2018;373:172-83.
6. Lu Z, Li W, Long Y, et al. Constructing a high-strength solid electrolyte layer by in vivo alloying with aluminum for an ultrahigh-rate lithium metal anode. Adv Funct Mater 2020;30:1907343.
7. Xu R, Shen X, Ma X, et al. Identifying the critical anion-cation coordination to regulate the electric double layer for an efficient lithium-metal anode interface. Angew Chem 2021;133:4261-6.
8. Wang X, Li S, Zhang W, et al. Dual-salt-additive electrolyte enables high-voltage lithium metal full batteries capable of fast-charging ability. Nano Energy 2021;89:106353.
9. He Y, Zhang Y, Wang Z, et al. In situ surface film formed by solid-state anodic oxidation for stable lithium metal anodes. Adv Funct Mater 2021;31:2101737.
10. Ju Z, Jin C, Cai X, et al. Cationic interfacial layer toward a LiF-enriched interphase for stable Li metal batteries. ACS Energy Lett 2023;8:486-93.
11. Liu Y, Tao X, Wang Y, et al. Self-assembled monolayers direct a LiF-rich interphase toward long-life lithium metal batteries. Science 2022;375:739-45.
12. Shadike Z, Tan S, Lin R, Cao X, Hu E, Yang XQ. Engineering and characterization of interphases for lithium metal anodes. Chem Sci 2022;13:1547-68.
13. Wang Z, Du Z, Liu Y, et al. Metal-organic frameworks and their derivatives for optimizing lithium metal anodes. eScience 2024;4:100189.
14. Li Z, Liang W, Chen J, et al. In-depth Li+ transportation in three-dimensionalized nanodiamond network for improved liquid and solid lithium metal batteries. Nano Energy 2023;110:108370.
15. Liu L, Yin YX, Li JY, Wang SH, Guo YG, Wan LJ. Uniform lithium nucleation/growth induced by lightweight nitrogen-doped graphitic carbon foams for high-performance lithium metal anodes. Adv Mater 2018;30:1706216.
16. Lu L, Zhang Y, Pan Z, Yao H, Zhou F, Yu S. Lithiophilic Cu-Ni core-shell nanowire network as a stable host for improving lithium anode performance. Energy Stor Mater 2017;9:31-8.
17. Chi S, Liu Y, Song W, Fan L, Zhang Q. Prestoring lithium into stable 3D nickel foam host as dendrite-free lithium metal anode. Adv Funct Mater 2017;27:1700348.
18. Liu B, Zhang Y, Wang Z, et al. Coupling a sponge metal fibers skeleton with in situ surface engineering to achieve advanced electrodes for flexible lithium-sulfur batteries. Adv Mater 2020;32:e2003657.
19. Ye H, Xin S, Yin YX, Li JY, Guo YG, Wan LJ. Stable Li plating/stripping electrochemistry realized by a hybrid Li reservoir in spherical carbon granules with 3D conducting skeletons. J Am Chem Soc 2017;139:5916-22.
20. Li S, Ma Y, Wei B. A lightweight, adhesive, dual-functionalized over-coating interphase toward ultra-stable high-current density lithium metal anodes. Energy Environ Mater 2021;4:103-10.
21. Gong H, Chen Y, Chen S, et al. Fast-charging of hybrid lithium-ion/lithium-metal anodes by nanostructured hard carbon host. ACS Energy Lett 2022;7:4417-26.
22. Tan L, Feng S, Li X, et al. Oxygen-induced lithiophilicity of tin-based framework toward highly stable lithium metal anode. Chem Eng J 2020;394:124848.
23. Tan L, Li X, Cheng M, et al. In-situ tailored 3D Li2O@Cu nanowires array enabling stable lithium metal anode with ultra-high coulombic efficiency. J Power Sources 2020;463:228178.
24. Wu K, Zhao B, Yang C, Wang Q, Liu W, Zhou H. ZnCo2O4/ZnO induced lithium deposition in multi-scaled carbon/nickel frameworks for dendrite-free lithium metal anode. J Energy Chem 2020;43:16-23.
25. Xue P, Liu S, Shi X, et al. A hierarchical silver-nanowire-graphene host enabling ultrahigh rates and superior long-term cycling of lithium-metal composite anodes. Adv Mater 2018;30:e1804165.
26. He Y, Song L, Li Z, Yao X, Peng Z. Hosting Li0 in an activated lithiophilic polymer matrix with electrodeposition regulating spaces for stable lithium metal anodes. Nano Energy 2023;118:109027.
27. Wang C, Zheng Y, Chen Z, et al. Robust anode-free sodium metal batteries enabled by artificial sodium formate interface. Adv Energy Mater 2023;13:2204125.
28. Li G, Zhao Z, Zhang S, et al. A biocompatible electrolyte enables highly reversible Zn anode for zinc ion battery. Nat Commun 2023;14:6526.
29. Feng Y, Rao A, Zhou J, Lu B. Selective potassium deposition enables dendrite-resistant anodes for ultrastable potassium-metal batteries. Adv Mater 2023;35:2300886.
30. Zhang Z, Jiang Y, Peng Z, et al. Facile pyrolyzed N-doped binder network for stable Si anodes. ACS Appl Mater Interfaces 2017;9:32775-81.