REFERENCES

1. Liu J, Bao Z, Cui Y, et al. Pathways for practical high-energy long-cycling lithium metal batteries. Nat Energy 2019;4:180-6.

2. Ren B, Cui H, Wang C. Self-supported graphene nanosheet-based composites as binder-free electrodes for advanced electrochemical energy conversion and storage. Electrochem Energy Rev 2022;5:2-27.

3. Song H, Su J, Wang C. The anion-cation relay battery prototype. Small Sci 2021;1:2000030.

4. Wu L, Sun R, Xiong F, et al. A rechargeable aluminum-ion battery based on a VS2 nanosheet cathode. Phys Chem Chem Phys 2018;20:22563-8.

5. Canepa P, Sai Gautam G, Hannah DC, et al. Odyssey of multivalent cathode materials: open questions and future challenges. Chem Rev 2017;117:4287-341.

6. Song H, Li Y, Tian F, Wang C. Electrolyte optimization and interphase regulation for significantly enhanced storage capability in Ca-metal batteries. Adv Funct Mater 2022;32:2200004.

7. Song H, Su J, Wang C. Hybrid solid electrolyte interphases enabled ultralong life Ca-metal batteries working at room temperature. Adv Mater 2021;33:e2006141.

8. Song H, Wang C. Current status and challenges of calcium metal batteries. Adv Energy Sustain Res 2022;3:2100192.

9. Muldoon J, Bucur CB, Gregory T. Quest for nonaqueous multivalent secondary batteries: magnesium and beyond. Chem Rev 2014;114:11683-720.

10. Tang B, Shan L, Liang S, Zhou J. Issues and opportunities facing aqueous zinc-ion batteries. Energy Environ Sci 2019;12:3288-304.

11. Yan Y, Li B, Guo W, Pang H, Xue H. Vanadium based materials as electrode materials for high performance supercapacitors. J Power Sources 2016;329:148-69.

12. Xu X, Xiong F, Meng J, et al. Vanadium-based nanomaterials: a promising family for emerging metal-ion batteries. Adv Funct Mater 2020;30:1904398.

13. Liu S, Kang L, Kim JM, Chun YT, Zhang J, Jun SC. Recent advances in vanadium-based aqueous rechargeable zinc-ion batteries. Adv Energy Mater 2020;10:2000477.

14. Prasadam V, Bahlawane N, Mattelaer F, et al. Atomic layer deposition of vanadium oxides: process and application review. Mater Today Chem 2019;12:396-423.

15. Wan F, Niu Z. Design strategies for vanadium-based aqueous zinc-ion batteries. Angew Chem Int Ed 2019;58:16358-67.

16. Xu Y, Deng X, Li Q, et al. Vanadium oxide pillared by interlayer Mg2+ ions and water as ultralong-life cathodes for magnesium-ion batteries. Chem 2019;5:1194-209.

17. Miao X, Chen Z, Wang N, et al. Electrospun V2MoO8 as a cathode material for rechargeable batteries with Mg metal anode. Nano Energy 2017;34:26-35.

18. Hu P, Hu P, Vu TD, et al. Vanadium oxide: phase diagrams, structures, synthesis, and applications. Chem Rev 2023;123:4353-415.

19. Zou C, Fan L, Chen R, et al. Thermally driven V2O5 nanocrystal formation and the temperature-dependent electronic structure study. CrystEngComm 2012;14:626-31.

20. Huie MM, Bock DC, Takeuchi ES, Marschilok AC, Takeuchi KJ. Cathode materials for magnesium and magnesium-ion based batteries. Coord Chem Rev 2015;287:15-27.

21. Lee S, Ivanov IN, Keum JK, Lee HN. Epitaxial stabilization and phase instability of VO2 polymorphs. Sci Rep 2016;6:19621.

22. Wei M, Sugihara H, Honma I, Ichihara M, Zhou H. A New metastable phase of crystallized V2O4·0.25H2O nanowires: synthesis and electrochemical measurements. Adv Mater 2005;17:2964-9.

23. Chernova NA, Roppolo M, Dillon AC, Whittingham MS. Layered vanadium and molybdenum oxides: batteries and electrochromics. J Mater Chem 2009;19:2526.

24. Liu M, Su B, Tang Y, Jiang X, Yu A. Recent advances in nanostructured vanadium oxides and composites for energy conversion. Adv Energy Mater 2017;7:1700885.

25. Jin T, Li H, Li Y, Jiao L, Chen J. Intercalation pseudocapacitance in flexible and self-standing V2O3 porous nanofibers for high-rate and ultra-stable K ion storage. Nano Energy 2018;50:462-7.

26. Yi T, Qiu L, Qu J, Liu H, Zhang J, Zhu Y. Towards high-performance cathodes: design and energy storage mechanism of vanadium oxides-based materials for aqueous Zn-ion batteries. Coord Chem Rev 2021;446:214124.

27. Li H, He P, Wang Y, Hosono E, Zhou H. High-surface vanadium oxides with large capacities for lithium-ion batteries: from hydrated aerogel to nanocrystalline VO2(B), V6O13 and V2O5. J Mater Chem 2011;21:10999.

28. Shin J, Choi DS, Lee HJ, Jung Y, Choi JW. Hydrated Intercalation for high-performance aqueous zinc ion batteries. Adv Energy Mater 2019;9:1900083.

29. Zhang Y, Liu X, Xie G, et al. Hydrothermal synthesis, characterization, formation mechanism and electrochemical property of V3O7·H2O single-crystal nanobelts. Mater Sci Eng B 2010;175:164-71.

30. Lv T, Peng Y, Zhang G, et al. How about vanadium-based compounds as cathode materials for aqueous zinc ion batteries? Adv Sci 2023;10:e2206907.

31. Liu Y, Xu L, Guo X, Lv T, Pang H. Vanadium sulfide based materials: synthesis, energy storage and conversion. J Mater Chem A 2020;8:20781-802.

32. Rout CS, Kim BH, Xu X, et al. Synthesis and characterization of patronite form of vanadium sulfide on graphitic layer. J Am Chem Soc 2013;135:8720-5.

33. Feng J, Sun X, Wu C, et al. Metallic few-layered VS2 ultrathin nanosheets: high two-dimensional conductivity for in-plane supercapacitors. J Am Chem Soc 2011;133:17832-8.

34. Yao K, Wu M, Chen D, et al. Vanadium tetrasulfide for next-generation rechargeable batteries: advances and challenges. Chem Rec 2022;22:e202200117.

35. Hu Z, Liu Q, Chou SL, Dou SX. Advances and challenges in metal sulfides/selenides for next-generation rechargeable sodium-ion batteries. Adv Mater 2017;29:1700606.

36. Sun R, Wei Q, Li Q, et al. Vanadium sulfide on reduced graphene oxide layer as a promising anode for sodium ion battery. ACS Appl Mater Interfaces 2015;7:20902-8.

37. Cheng S, Yao K, Zheng K, et al. Self-assembled VS4 hierarchitectures with enhanced capacity and stability for sodium storage. Energy Environ Mater 2022;5:592-8.

38. Kundu D, Adams BD, Duffort V, Vajargah SH, Nazar LF. A high-capacity and long-life aqueous rechargeable zinc battery using a metal oxide intercalation cathode. Nat Energy 2016;1:16119.

39. Yang Y, Tang Y, Liang S, et al. Transition metal ion-preintercalated V2O5 as high-performance aqueous zinc-ion battery cathode with broad temperature adaptability. Nano Energy 2019;61:617-25.

40. Sarkar S, Banda H, Mitra S. High capacity lithium-ion battery cathode using LiV3O8 nanorods. Electrochim Acta 2013;99:242-52.

41. Oka Y, Yao T, Yamamoto N. Hydrothermal synthesis and structure refinements of alkali-metal trivanadates AV3O8 (A = K, Rb, Cs). Mater Res Bull 1997;32:1201-9.

42. Krachodnok S, Haller KJ, Willaims ID. Improved synthesis of alkali metal vanadates using a hydrothermal method. Eng J 2012;16:19-28.

43. Wadsley AD. Crystal chemistry of non-stoichiometric pentavalent vandadium oxides: crystal structure of Li1+xV3O8. Acta Cryst 1957;10:261-7.

44. Peng S, Li L, Hu Y, et al. Fabrication of spinel one-dimensional architectures by single-spinneret electrospinning for energy storage applications. ACS Nano 2015;9:1945-54.

45. Ming F, Liang H, Lei Y, Kandambeth S, Eddaoudi M, Alshareef HN. Layered MgxV2O5·nH2O as cathode material for high-performance aqueous zinc ion batteries. ACS Energy Lett 2018;3:2602-9.

46. Wang J, Wang J, Jiang Y, et al. CaV6O16·2.8H2O with Ca2+ pillar and water lubrication as a high-rate and long-life cathode material for ca-ion batteries. Adv Funct Mater 2022;32:2113030.

47. Li J, Mccoll K, Lu X, et al. Multi-scale investigations of δ-Ni0.25V2O5·nH2O cathode materials in aqueous zinc-ion batteries. Adv Energy Mater 2020;10:2000058.

48. Liu Y, Li C, Xu J, et al. Electroactivation-induced spinel ZnV2O4 as a high-performance cathode material for aqueous zinc-ion battery. Nano Energy 2020;67:104211.

49. Tang C, Xiong F, Lan B, et al. Constructing a disorder/order structure for enhanced magnesium storage. Chem Eng J 2020;382:123049.

50. Ma XF, Li HY, Zhu X, et al. Switchable and strain-releasable Mg-ion diffusion nanohighway enables high-capacity and long-life pyrovanadate cathode. Small 2022;18:e2202250.

51. Liu Y, Li Q, Ma K, Yang G, Wang C. Graphene oxide wrapped CuV2O6 nanobelts as high-capacity and long-life cathode materials of aqueous zinc-ion batteries. ACS Nano 2019;13:12081-9.

52. Zhu K, Jiang W, Wang Z, et al. Hewettite ZnV6O16 · 8H2O with remarkably stable layers and ultralarge interlayer spacing for high-performance aqueous Zn-ion batteries. Angew Chem Int Ed 2023;62:e202213368.

53. Yang W, Yang W, Huang Y, Xu C, Dong L, Peng X. Reversible aqueous zinc-ion battery based on ferric vanadate cathode. Chin Chem Lett 2022;33:4628-34.

54. Wei T, Li Q, Yang G, Wang C. Highly reversible and long-life cycling aqueous zinc-ion battery based on ultrathin (NH4)2V10O25·8H2O nanobelts. J Mater Chem A 2018;6:20402-10.

55. Vo TN, Kim H, Hur J, Choi W, Kim IT. Surfactant-assisted ammonium vanadium oxide as a superior cathode for calcium-ion batteries. J Mater Chem A 2018;6:22645-54.

56. Wei T, Liu Y, Yang G, Wang C. Aluminum vanadate hollow spheres as zero-strain cathode material for highly reversible and durable aqueous zinc-ion batteries. Energy Storage Mater 2020;30:130-7.

57. Li Y, Liu Y, Chen J, et al. Polyaniline intercalation induced great enhancement of electrochemical properties in ammonium vanadate nanosheets as an advanced cathode for high-performance aqueous zinc-ion batteries. Chem Eng J 2022;448:137681.

58. Liu C, Massé R, Nan X, Cao G. A promising cathode for Li-ion batteries: Li3V2(PO4)3. Energy Storage Mater 2016;4:15-58.

59. Jian Z, Hu YS, Ji X, Chen W. NASICON-structured materials for energy storage. Adv Mater 2017;29:1601925.

60. Guan J, Huang Q, Shao L, et al. Polyanion-type Na3V2(PO4)2F3@rGO with high-voltage and ultralong-life for aqueous zinc ion batteries. Small 2023;19:e2207148.

61. Wu Z, Lu C, Ye F, et al. Bilayered VOPO4·2H2O nanosheets with high-concentration oxygen vacancies for high-performance aqueous zinc-ion batteries. Adv Funct Mater 2021;31:2106816.

62. Zheng J, Xu T, Xia G, Cui WG, Yang Y, Yu X. Water-stabilized vanadyl phosphate monohydrate ultrathin nanosheets toward high voltage Al-ion batteries. Small 2023;19:e2207619.

63. VahidMohammadi A, Hadjikhani A, Shahbazmohamadi S, Beidaghi M. Two-dimensional vanadium carbide (MXene) as a high-capacity cathode material for rechargeable aluminum batteries. ACS Nano 2017;11:11135-44.

64. Gogotsi Y, Anasori B. The rise of MXenes. ACS Nano 2019;13:8491-4.

65. Qureshi A, Abdelhay AH, Zaidi SA, et al. Emerging trends in niobium, vanadium, and molybdenum based MXenes applications. Crit Rev Solid State Mater Sci 2024;49:141-62.

66. Liu Y, Jiang Y, Hu Z, et al. In-situ electrochemically activated surface vanadium valence in V2C MXene to achieve high capacity and superior rate performance for Zn-ion batteries. Adv Funct Mater 2021;31:2008033.

67. Guan J, Shao L, Yu L, et al. Two-dimensional Mg0.2V2O5·nH2O nanobelts derived from V4C3 MXenes for highly stable aqueous zinc ion batteries. Chem Eng J 2022;443:136502.

68. Zhu J, Zhang X, Gao H, et al. VS4 anchored on Ti3C2 MXene as a high-performance cathode material for magnesium ion battery. J Power Sources 2022;518:230731.

69. Aurbach D, Lu Z, Schechter A, et al. Prototype systems for rechargeable magnesium batteries. Nature 2000;407:724-7.

70. An Q, Li Y, Deog Yoo H, et al. Graphene decorated vanadium oxide nanowire aerogel for long-cycle-life magnesium battery cathodes. Nano Energy 2015;18:265-72.

71. Wang J, Tan S, Zhang G, et al. Fast and stable Mg2+ intercalation in a high voltage NaV2O2(PO4)2F/rGO cathode material for magnesium-ion batteries. Sci China Mater 2020;63:1651-62.

72. Dong H, Liang Y, Tutusaus O, et al. Directing Mg-storage chemistry in organic polymers toward high-energy Mg batteries. Joule 2019;3:782-93.

73. Zhao Y, Wang D, Yang D, et al. Superior Mg2+ storage properties of VS2 nanosheets by using an APC-PP14Cl/THF electrolyte. Energy Storage Mater 2019;23:749-56.

74. Li Z, Ding S, Yin J, Zhang M, Sun C, Meng A. Morphology-dependent electrochemical performance of VS4 for rechargeable magnesium battery and its magnesiation/demagnesiation mechanism. J Power Sources 2020;451:227815.

75. Wang Y, Liu Z, Wang C, et al. Highly branched VS4 Nanodendrites with 1D atomic-Chain structure as a promising cathode material for long-cycling magnesium batteries. Adv Mater 2018;30:e1802563.

76. Ding S, Dai X, Tian Y, et al. Synergy strategy of electrical conductivity enhancement and vacancy introduction for improving the performance of VS4 magnesium-ion battery cathode. ACS Appl Mater Interfaces 2021;13:54005-17.

77. Pei C, Yin Y, Sun R, et al. Interchain-expanded vanadium tetrasulfide with fast kinetics for rechargeable magnesium batteries. ACS Appl Mater Interfaces 2019;11:31954-61.

78. Xue X, Chen R, Yan C, et al. One-step synthesis of 2-ethylhexylamine pillared vanadium disulfide nanoflowers with ultralarge interlayer spacing for high-performance magnesium storage. Adv Energy Mater 2019;9:1900145.

79. Ding S, Dai X, Li Z, et al. PVP-induced synergistic engineering of interlayer, self-doping, active surface and vacancies in VS4 for enhancing magnesium ions storage and durability. Energy Storage Mater 2022;47:211-22.

80. Mukherjee A, Taragin S, Aviv H, Perelshtein I, Noked M. Rationally designed vanadium pentoxide as high capacity insertion material for Mg-ion. Adv Funct Mater 2020;30:2003518.

81. Zuo C, Xiao Y, Pan X, et al. Organic-inorganic superlattices of vanadium oxide@polyaniline for high-performance magnesium-ion batteries. ChemSusChem 2021;14:2093-9.

82. Joe YS, Kang MS, Jang G, et al. Intercalation of bilayered V2O5 by electronically coupled PEDOT for greatly improved kinetic performance of magnesium ion battery cathodes. Chem Eng J 2023;460:141706.

83. Wu D, Zhuang Y, Wang F, Yang Y, Zeng J, Zhao J. High-rate performance magnesium batteries achieved by direct growth of honeycomb-like V2O5 electrodes with rich oxygen vacancies. Nano Res 2023;16:4880-7.

84. Tang H, Xiong F, Jiang Y, et al. Alkali ions pre-intercalated layered vanadium oxide nanowires for stable magnesium ions storage. Nano Energy 2019;58:347-54.

85. Rashad M, Zhang H, Asif M, Feng K, Li X, Zhang H. Low-cost room-temperature synthesis of NaV3O8·1.69H2O nanobelts for Mg batteries. ACS Appl Mater Interfaces 2018;10:4757-66.

86. Wang X, Zhang X, Zhao G, et al. Ether-water hybrid electrolyte contributing to excellent Mg ion storage in layered sodium vanadate. ACS Nano 2022;16:6093-102.

87. Tang B, Fang G, Zhou J, et al. Potassium vanadates with stable structure and fast ion diffusion channel as cathode for rechargeable aqueous zinc-ion batteries. Nano Energy 2018;51:579-87.

88. Li C, Wu W, Liu Y, et al. Facilitating Mg2+ diffusion in high potential LixV2(PO4)3 cathode material with a co-insertion strategy for rechargeable Mg-ion batteries. J Power Sources 2022;520:230853.

89. Zhang X, Xu X, Song B, et al. Towards a stable layered vanadium oxide cathode for high-capacity calcium batteries. Small 2022;18:e2107174.

90. Jeon B, Kwak HH, Hong S. Bilayered Ca0.28V2O5·H2O: high-capacity cathode material for rechargeable Ca-ion batteries and its charge storage mechanism. Chem Mater 2022;34:1491-8.

91. Purbarani ME, Hyoung J, Hong S. Crystal-water-free potassium vanadium bronze (K0.5V2O5) as a cathode material for Ca-ion batteries. ACS Appl Energy Mater 2021;4:7487-91.

92. Adil M, Sarkar A, Sau S, Muthuraj D, Mitra S. Non-aqueous rechargeable calcium-ion batteries based on high voltage zirconium-doped ammonium vanadium oxide cathode. J Power Sources 2022;541:231669.

93. Wang Y, Cai J, Han T, et al. In-situ growing polyaniline nano-spine array on FeVO4 nanobelts as high-performance rechargeable aluminum-ion battery cathode. Appl Surf Sci 2022;591:153157.

94. Singh S, Bairagi PK, Verma N. Candle soot-derived carbon nanoparticles: an inexpensive and efficient electrode for microbial fuel cells. Electrochim Acta 2018;264:119-27.

95. Wang H, Xu Q. Materials design for rechargeable metal-air batteries. Matter 2019;1:565-95.

96. Ju S, Ye J, Meng Y, Xia G, Yu X. Pre-lithiated Li2V6O13 cathode enables high-energy aluminum-ion battery. Adv Energy Mater 2022;12:2201653.

97. Xing L, Owusu KA, Liu X, et al. Insights into the storage mechanism of VS4 nanowire clusters in aluminum-ion battery. Nano Energy 2021;79:105384.

98. Han X, Wu F, Zhao R, Bai Y, Wu C. Tremella-like vanadium tetrasulfide as a high-performance cathode material for rechargeable aluminum batteries. ACS Appl Mater Interfaces 2023;15:6888-901.

99. Li Q, Rui X, Chen D, et al. A high-capacity ammonium vanadate cathode for zinc-ion battery. Nanomicro Lett 2020;12:67.

100. Tan H, Chen D, Liu W, et al. Free-standing hydrated sodium vanadate papers for high-stability zinc-ion batteries. Batteries Supercaps 2020;3:254-60.

101. Mei Y, Liu Y, Xu W, Zhang M, Dong Y, Qiu J. Suppressing vanadium dissolution in 2D V2O5/MXene heterostructures via organic/aqueous hybrid electrolyte for stable zinc ion batteries. Chem Eng J 2023;452:139574.

102. Yagi S, Ichitsubo T, Shirai Y, et al. A concept of dual-salt polyvalent-metal storage battery. J Mater Chem A 2014;2:1144-9.

103. Sun R, Pei C, Sheng J, et al. High-rate and long-life VS2 cathodes for hybrid magnesium-based battery. Energy Storage Mater 2018;12:61-8.

104. Pei C, Xiong F, Sheng J, et al. VO2 nanoflakes as the cathode material of hybrid magnesium-lithium-ion batteries with high energy density. ACS Appl Mater Interfaces 2017;9:17060-6.

105. Hu X, Peng J, Xu F, Ding M. Rechargeable Mg2+/Li+, Mg2+/Na+, and Mg2+/K+ hybrid batteries based on layered VS2. ACS Appl Mater Interfaces 2021;13:57252-63.

106. Rashad M, Li X, Zhang H. Magnesium/lithium-ion hybrid battery with high reversibility by employing NaV3O8·1.69H2O nanobelts as a positive electrode. ACS Appl Mater Interfaces 2018;10:21313-20.

107. Zhao S, Li C, Zhang X, et al. An advanced Ca/Zn hybrid battery enabled by the dendrite-free zinc anode and a reversible calcification/decalcification NASICON cathode. Sci Bull 2023;68:56-64.

108. Liang Z, Tian F, Yang G, Wang C. Enabling long-cycling aqueous sodium-ion batteries via Mn dissolution inhibition using sodium ferrocyanide electrolyte additive. Nat Commun 2023;14:3591.

109. Zhang H, Cao D, Bai X. High rate performance of aqueous magnesium-ion batteries based on the δ-MnO2@carbon molecular sieves composite as the cathode and nanowire VO2 as the anode. J Power Sources 2019;444:227299.

110. Zhao Y, Chen Z, Mo F, et al. Aqueous rechargeable metal-ion batteries working at subzero temperatures. Adv Sci 2020;8:2002590.

111. Yang G, Xu X, Qu G, et al. An aqueous magnesium-ion battery working at -50 °C enabled by modulating electrolyte structure. Chem Eng J 2023;455:140806.

112. Zhang H, Ye K, Zhu K, et al. High-energy-density aqueous magnesium-ion battery based on a carbon-coated FeVO4 anode and a Mg-OMS-1 cathode. Chemistry 2017;23:17118-26.

113. Liu L, Wu YC, Rozier P, Taberna PL, Simon P. Ultrafast synthesis of calcium vanadate for superior aqueous calcium-ion battery. Research 2019;2019:6585686.

114. Dong L, Xu R, Wang P, et al. Layered potassium vanadate K2V6O16 nanowires: a stable and high capacity cathode material for calcium-ion batteries. J Power Sources 2020;479:228793.

115. Soundharrajan V, Nithiananth S, Lee J, Kim JH, Hwang J, Kim J. LiV3O8 as an intercalation-type cathode for aqueous aluminum-ion batteries. J Mater Chem A 2022;10:18162-9.

116. Kumar S, Satish R, Verma V, et al. Investigating FeVO4 as a cathode material for aqueous aluminum-ion battery. J Power Sources 2019;426:151-61.

117. Pang Q, Yang S, Yu X, et al. Realizing reversible storage of trivalent aluminum ions using VOPO4·2H2O nanosheets as cathode material in aqueous aluminum metal batteries. J Alloys Compd 2021;885:161008.

118. Wang P, Chen Z, Wang H, et al. A high-performance flexible aqueous Al ion rechargeable battery with long cycle life. Energy Storage Mater 2020;25:426-35.

119. Yang Q, Qu X, Cui H, et al. Rechargeable aqueous Mn-metal battery enabled by inorganic-organic interfaces. Angew Chem Int Ed 2022;61:e202206471.

120. Nimkar A, Chae MS, Wee S, et al. What about manganese? ACS Energy Lett 2022;7:4161-7.

121. Bi S, Wang S, Yue F, Tie Z, Niu Z. A rechargeable aqueous manganese-ion battery based on intercalation chemistry. Nat Commun 2021;12:6991.

122. Liu Y, Lu X, Lai F, et al. Rechargeable aqueous Zn-based energy storage devices. Joule 2021;5:2845-903.

123. Guo J, Ming J, Lei Y, et al. Artificial solid electrolyte interphase for suppressing surface reactions and cathode dissolution in aqueous zinc ion batteries. ACS Energy Lett 2019;4:2776-81.

124. Zhang N, Cheng F, Liu J, et al. Rechargeable aqueous zinc-manganese dioxide batteries with high energy and power densities. Nat Commun 2017;8:405.

125. Zhang W, Dai Y, Chen R, et al. Highly reversible zinc metal anode in a dilute aqueous electrolyte enabled by a pH buffer additive. Angew Chem Int Ed 2023;62:e202212695.

126. He P, Yan M, Zhang G, et al. Layered VS2 nanosheet-based aqueous Zn ion battery cathode. Adv Energy Mater 2017;7:1601920.

127. Jiao T, Yang Q, Wu S, et al. Binder-free hierarchical VS2 electrodes for high-performance aqueous Zn ion batteries towards commercial level mass loading. J Mater Chem A 2019;7:16330-8.

128. Yu D, Wei Z, Zhang X, et al. Boosting Zn2+ and NH4+ storage in aqueous media via in-situ electrochemical induced VS2/VOx heterostructures. Adv Funct Mater 2021;31:2008743.

129. Liu J, Peng W, Li Y, Zhang F, Fan X. A VS2@N-doped carbon hybrid with strong interfacial interaction for high-performance rechargeable aqueous Zn-ion batteries. J Mater Chem C 2021;9:6308-15.

130. Gao S, Ju P, Liu Z, et al. Electrochemically induced phase transition in a nanoflower vanadium tetrasulfide cathode for high-performance zinc-ion batteries. J Energy Chem 2022;69:356-62.

131. Qin H, Yang Z, Chen L, Chen X, Wang L. A high-rate aqueous rechargeable zinc ion battery based on the VS4@rGO nanocomposite. J Mater Chem A 2018;6:23757-65.

132. Yoo G, Koo B, An G. Nano-sized split V2O5 with H2O-intercalated interfaces as a stable cathode for zinc ion batteries without an aging process. Chem Eng J 2022;434:134738.

133. Yan M, He P, Chen Y, et al. Water-Lubricated Intercalation in V2O5·nH2O for high-capacity and high-rate aqueous rechargeable zinc batteries. Adv Mater 2018;30:1703725.

134. Li Y, Huang Z, Kalambate PK, et al. V2O5 nanopaper as a cathode material with high capacity and long cycle life for rechargeable aqueous zinc-ion battery. Nano Energy 2019;60:752-9.

135. Wei T, Li Q, Yang G, Wang C. High-rate and durable aqueous zinc ion battery using dendritic V10O24·12H2O cathode material with large interlamellar spacing. Electrochim Acta 2018;287:60-7.

136. Yang G, Wei T, Wang C. Self-healing lamellar structure boosts highly stable zinc-storage property of bilayered vanadium oxides. ACS Appl Mater Interfaces 2018;10:35079-89.

137. Jiang H, Gong W, Zhang Y, et al. Quench-tailored Al-doped V2O5 nanomaterials for efficient aqueous zinc-ion batteries. J Energy Chem 2022;70:52-8.

138. Zhao Y, Han C, Yang J, et al. Stable alkali metal ion intercalation compounds as optimized metal oxide nanowire cathodes for lithium batteries. Nano Lett 2015;15:2180-5.

139. Wang X, Zhang Z, Huang M, Feng J, Xiong S, Xi B. In situ electrochemically activated vanadium oxide cathode for advanced aqueous Zn-ion batteries. Nano Lett 2022;22:119-27.

140. Zhu K, Wei S, Shou H, et al. Defect engineering on V2O3 cathode for long-cycling aqueous zinc metal batteries. Nat Commun 2021;12:6878.

141. Cao Z, Chu H, Zhang H, et al. An in situ electrochemical oxidation strategy for formation of nanogrid-shaped V3O7·H2O with enhanced zinc storage properties. J Mater Chem A 2019;7:25262-7.

142. Cao H, Zheng Z, Norby P, Xiao X, Mossin S. Electrochemically induced phase transition in V3O7·H2O nanobelts/reduced graphene oxide composites for aqueous zinc-ion batteries. Small 2021;17:2100558.

143. Ding Y, Peng Y, Chen S, et al. Hierarchical porous metallic V2O3@C for advanced aqueous zinc-ion batteries. ACS Appl Mater Interfaces 2019;11:44109-17.

144. He P, Liu J, Zhao X, Ding Z, Gao P, Fan L. A three-dimensional interconnected V6O13 nest with a V5+-rich state for ultrahigh Zn ion storage. J Mater Chem A 2020;8:10370-6.

145. Shi W, Yin B, Yang Y, et al. Unravelling V6O13 diffusion pathways via CO2 modification for high-performance zinc ion battery cathode. ACS Nano 2021;15:1273-81.

146. Chen L, Ruan Y, Zhang G, et al. Ultrastable and high-performance Zn/VO2 battery based on a reversible single-phase reaction. Chem Mater 2019;31:699-706.

147. Zhu K, Wu T, Huang K. A high-voltage activated high-erformance cathode for aqueous Zn-ion batteries. Energy Storage Mater 2021;38:473-81.

148. Wei T, Li Q, Yang G, Wang C. An electrochemically induced bilayered structure facilitates long-life zinc storage of vanadium dioxide. J Mater Chem A 2018;6:8006-12.

149. Tang Z, Zou R, Chen X, Li Z, Lei G. Solvothermal synthesis of VO2 and in situ electrochemical transformation of Zn2V2O7 as cathode for long-life aqueous zinc-ion batteries. J Power Sources 2023;569:233006.

150. Deng S, Li H, Chen B, et al. High performance of Mn-doped VO2 cathode for aqueous zinc-ion batteries: an insight into Zn2+ storage mechanism. Chem Eng J 2023;452:139115.

151. Ma L, Li N, Long C, et al. Achieving both high voltage and high capacity in aqueous zinc-ion battery for record high energy density. Adv Funct Mater 2019;29:1906142.

152. Chae MS, Attias R, Dlugatch B, Gofer Y, Aurbach D. Multifold electrochemical protons and zinc ion storage behavior in copper vanadate cathodes. ACS Appl Energy Mater 2021;4:10197-202.

153. Alfaruqi MH, Mathew V, Song J, et al. Electrochemical zinc intercalation in lithium vanadium oxide: a high-capacity zinc-ion battery cathode. Chem Mater 2017;29:1684-94.

154. Li Q, Liu Y, Ma K, Yang G, Wang C. In situ Ag nanoparticles reinforced pseudo-Zn-air reaction boosting Ag2V4O11 as high-performance cathode material for aqueous zinc-ion batteries. Small Methods 2019;3:1900637.

155. Wan F, Huang S, Cao H, Niu Z. Freestanding potassium vanadate/carbon nanotube films for ultralong-life aqueous zinc-ion batteries. ACS Nano 2020;14:6752-60.

156. Zhu K, Wu T, Huang K. NaCa0.6V6O16·3H2O as an ultra-stable cathode for Zn-ion batteries: the roles of pre-inserted dual-cations and structural water in V3O8 layer. Adv Energy Mater 2019;9:1901968.

157. Xia C, Guo J, Lei Y, Liang H, Zhao C, Alshareef HN. Rechargeable aqueous zinc-ion battery based on porous framework zinc pyrovanadate intercalation cathode. Adv Mater 2018;30:1705580.

158. Peng Z, Wei Q, Tan S, et al. Novel layered iron vanadate cathode for high-capacity aqueous rechargeable zinc batteries. Chem Commun 2018;54:4041-4.

159. Wang X, Xi B, Feng Z, et al. Layered (NH4)2V6O16·1.5H2O nanobelts as a high-performance cathode for aqueous zinc-ion batteries. J Mater Chem A 2019;7:19130-9.

160. Jiang Y, Wu Z, Ye F, et al. Spontaneous knitting behavior of 6.7-nm thin (NH4)0.38V2O5 nano- ribbons for binder-free zinc-ion batteries. Energy Storage Mater 2021;42:286-94.

161. Li S, Yu D, Liu J, et al. Quantitative regulation of interlayer space of NH4V4O10 for fast and durable Zn2+ and NH4+ storage. Adv Sci 2023;10:e2206836.

162. Shi HY, Song Y, Qin Z, et al. Inhibiting VOPO4·xH2O decomposition and dissolution in rechargeable aqueous zinc batteries to promote voltage and capacity stabilities. Angew Chem Int Ed 2019;58:16057-61.

163. Zhang W, Dong M, Jiang K, et al. Self-repairing interphase reconstructed in each cycle for highly reversible aqueous zinc batteries. Nat Commun 2022;13:5348.

164. Li C, Kingsbury R, Zhou L, Shyamsunder A, Persson KA, Nazar LF. Tuning the solvation structure in aqueous zinc batteries to maximize Zn-ion intercalation and optimize dendrite-free zinc plating. ACS Energy Lett 2022;7:533-40.

165. Hu L, Wu Z, Lu C, Ye F, Liu Q, Sun Z. Principles of interlayer-spacing regulation of layered vanadium phosphates for superior zinc-ion batteries. Energy Environ Sci 2021;14:4095-106.

166. Hu P, Zhu T, Wang X, et al. Aqueous Zn//Zn(CF3SO3)2//Na3V2(PO4)3 batteries with simultaneous Zn2+/Na+ intercalation/de-intercalation. Nano Energy 2019;58:492-8.

167. Pang Q, Sun C, Yu Y, et al. H2V3O8 nanowire/graphene electrodes for aqueous rechargeable zinc ion batteries with high rate capability and large capacity. Adv Energy Mater 2018;8:1800144.

168. Chen X, Kong Q, Wu X, et al. V2O3@C optimized by carbon regulation strategy for ultra long-life aqueous zinc-ion batteries. Chem Eng J 2023;451:138765.

169. Ren J, Hong P, Ran Y, Chen Y, Xiao X, Wang Y. Binder-free three-dimensional interconnected CuV2O5·nH2O nests as cathodes for high-loading aqueous zinc-ion batteries. Inorg Chem Front 2022;9:792-804.

170. Li X, Li M, Yang Q, et al. In situ electrochemical synthesis of MXenes without acid/alkali usage in/for an aqueous zinc ion battery. Adv Energy Mater 2020;10:2001791.

171. Zhang X, Xue F, Sun X, et al. High-capacity zinc vanadium oxides with long-term cyclability enabled by in-situ electrochemical oxidation as zinc-ion battery cathode. Chem Eng J 2022;445:136714.

172. Du Y, Wang X, Zhang Y, et al. High mass loading CaV4O9 microflowers with amorphous phase transformation as cathode for aqueous zinc-ion battery. Chem Eng J 2022;434:134642.

173. Shan L, Zhou J, Han M, et al. Reversible Zn-driven reduction displacement reaction in aqueous zinc-ion battery. J Mater Chem A 2019;7:7355-9.

174. Tang W, Lan B, Tang C, et al. Urchin-like spinel MgV2O4 as a cathode material for aqueous zinc-ion batteries. ACS Sustain Chem Eng 2020;8:3681-8.

175. Salanne M, Rotenberg B, Naoi K, et al. Efficient storage mechanisms for building better supercapacitors. Nat Energy 2016;1:16070.

176. Guo J, Li L, Luo J, et al. Polypyrrole-assisted nitrogen doping strategy to boost vanadium dioxide performance for wearable nonpolarity supercapacitor and aqueous zinc-ion battery. Adv Energy Mater 2022;12:2201481.

177. Lee Y, Yoo G, Jo Y, An H, Koo B, An G. Interfacial electrochemical media-engineered tunable vanadium zinc hydrate oxygen defect for enhancing the redox reaction of zinc-ion hybrid supercapacitors. Adv Energy Mater 2023;13:2300630.

178. Fu Q, Wu X, Luo X, et al. High-voltage aqueous Mg-ion batteries enabled by solvation structure reorganization. Adv Funct Mater 2022;32:2110674.

179. Wu D, Zeng J, Hua H, Wu J, Yang Y, Zhao J. NaV6O15: a promising cathode material for insertion/extraction of Mg2+ with excellent cycling performance. Nano Res 2020;13:335-43.

180. Tang H, Chao F, Chen H, et al. Water-lubricated aluminum vanadate for enhanced rechargeable magnesium ion storage. Small 2022;18:e2203525.

181. Deng X, Xu Y, An Q, et al. Manganese ion pre-intercalated hydrated vanadium oxide as a high-performance cathode for magnesium ion batteries. J Mater Chem A 2019;7:10644-50.

182. Xu X, Duan M, Yue Y, et al. Bilayered Mg0.25V2O5·H2O as a stable cathode for rechargeable Ca-ion batteries. ACS Energy Lett 2019;4:1328-35.

183. Chae MS, Setiawan D, Kim HJ, Hong ST. Layered iron vanadate as a high-capacity cathode material for nonaqueous calcium-ion batteries. Batteries 2021;7:54.

184. Gao W, Michalička J, Pumera M. Hierarchical atomic layer deposited V2O5 on 3D printed nanocarbon electrodes for high-performance aqueous zinc-ion batteries. Small 2022;18:e2105572.

185. Li Z, Ren Y, Mo L, et al. Impacts of oxygen vacancies on zinc ion intercalation in VO2. ACS Nano 2020;14:5581-9.

186. Chen H, Chen L, Meng J, et al. Synergistic effects in V3O7/V2O5 composite material for high capacity and long cycling life aqueous rechargeable zinc ion batteries. J Power Sources 2020;474:228569.

187. He D, Peng Y, Ding Y, et al. Suppressing the skeleton decomposition in Ti-doped NH4V4O10 for durable aqueous zinc ion battery. J Power Sources 2021;484:229284.

188. He P, Yan M, Liao X, Luo Y, Mai L, Nan C. Reversible V3+/V5+ double redox in lithium vanadium oxide cathode for zinc storage. Energy Storage Mater 2020;29:113-20.

189. He P, Zhang G, Liao X, et al. Sodium ion stabilized vanadium oxide nanowire cathode for high-performance zinc-ion batteries. Adv Energy Mater 2018;8:1702463.

190. Yi H, Zuo C, Ren H, et al. Structure evolution and energy storage mechanism of Zn3V3O8 spinel in aqueous zinc batteries. Nanoscale 2021;13:14408-16.

191. Li W, Wang K, Cheng S, Jiang K. A long-life aqueous Zn-ion battery based on Na3V2(PO4)2F3 cathode. Energy Storage Mater 2018;15:14-21.

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