55
66. He P, Quan Y, Xu X et al (2017) High-performance aqueous zinc–ion battery based on layered H 2 V 3 O 8 nanowire cathode. Small 13:1702551
67. Yan M, He P, Chen Y et al (2018) Water-lubricated intercalation in V 2 O 5 ·nH 2 O for highcapacity and high-rate aqueous rechargeable zinc batteries. Adv Mater 30:1703725
68. He P, Zhang G, Liao X et al (2018) Sodium ion stabilized vanadium oxide nanowire cathode
for high-performance zinc-ion batteries. Adv Energy Mater 8:1702463
69. Cai Y, Liu F, Luo Z et al (2018) Pilotaxitic Na 1.1 V 3 O 7.9 nanoribbons/graphene as highperformance sodium ion battery and aqueous zinc ion battery cathode. Energy Storage Mater
13:168–174
70. Sambandam B, Soundharrajan V, Kim S et al (2018) Aqueous rechargeable Zn-ion batteries:
an imperishable and high-energy Zn 2 V 2 O 7 nanowire cathode through intercalation regulation.
J Mater Chem A 5:3850–3856
71. Xia C, Guo J, Li P et al (2018) Highly stable aqueous zinc-ion storage using layered calcium
vanadium oxide bronze cathode. Angew Chem Int Ed 57:1–7
72. Hu P, Zhu T, Wang X et al (2018) Highly durable Na 2 V 6 O 16 ·1.63H 2 O nanowire cathode for
aqueous zinc-ion battery. Nano Lett 18:1758–1763
73. Kundu D, Vajargah SH, Wan L et al (2018) Aqueous vs. nonaqueous Zn-ion batteries: consequences of the desolvation penalty at the interface. Energy Environ Sci 11:881–892
74. He P, Yan M, Zhang G et al (2017) Layered VS 2 nanosheet-based aqueous Zn ion battery
cathode. Adv Energy Mater 7:1601920
75. Li G, Yang Z, Jiang Y et al (2016) Towards polyvalent ion batteries: a zinc-ion battery based
on NASICON structured Na 3 V 2 (PO 4 ) 3 . Nano Energy 25:211–217
76. Zhou J, Shan L, Wu Z et al (2018) Investigation of V 2 O 5 as a low-cost rechargeable aqueous
zinc ion battery cathode. Chem Commun 54:4457–4460
77. Chen X, Wang L, Li H et al (2019) Porous V 2 O 5 nanofibers as cathode materials for rechargeable aqueous zinc-ion batteries. J Energy Chem 38:20–25
78. Wei T, Li Q, Yang G et al (2018) High-rate and durable aqueous zinc ion battery using dendritic V 10 O 24 ·12H 2 O cathode material with large interlamellar spacing. Electrochim Acta
287:60–67
79. Guo X, Fang G, Zhang W et al (2018) Mechanistic insights of Zn
2+ storage in sodium
Vanadates. Adv Energy Mater 8:1801819
80. Tang B, Zhou J, Fang G et al (2019) Structural modification of V 2 O 5 as high-performance
aqueous zinc-ion battery cathode. J Electrochem Soc 166:A480–A486
81. Shan L, Yang Y, Zhang W (2018) Observation of combination displacement/intercalation
reaction in aqueous zinc-ion battery. Energy Storage Mater 18:10–14
82. Wei T, Li Q, Yang G et al (2018) Highly reversible and long-life cycling aqueous zinc-ion
battery based on ultrathin (NH 4 ) 2 V 10 O 25 ·8H 2 O nanobelts. J Mater Chem A 6:20402–20410
83. Wan F, Zhang L, Dai X et al (2018) Aqueous rechargeable zinc/sodium vanadate batteries with enhanced performance from simultaneous insertion of dual carriers. Nat Commun
9:1656
84. Tang B, Fang G, Zhou J et al (2019) Potassium vanadates with stable structure and fast
ion diffusion channel as cathode for rechargeable aqueous zinc-ion batteries. Nano Energy
51:579–587
85. Peng Z, Wei Q, Tan S et al (2018) Novel layered iron vanadate cathode for high-capacity
aqueous rechargeable zinc batteries. Chem Commun 54:4041–4044
86. Zhang N, Jia M, Dong Y et al (2019) Hydrated layered vanadium oxide as a highly reversible
cathode for rechargeable aqueous zinc batteries. Adv Funct Mater 29:1807331
87. Islam S, Muhammad HA, Dimas YP et al (2019) K
+ intercalated V 2 O5 nanorods with exposed
facets as advanced cathodes for high energy and high rate zinc-ion batteries. J Mater Chem A
7:20335–20347
88. Zhang Y, Hanmei J, Xu L (2019) Ammonium vanadium oxide [(NH 4 ) 2 V 4 O 9 ] sheets for high
capacity electrodes in aqueous zinc ion batteries. ACS Appl Energ Mater 11:7861–7869
Recent Developments of Zinc-Ion Batteries
66. He P, Quan Y, Xu X et al (2017) High-performance aqueous zinc–ion battery based on layered H 2 V 3 O 8 nanowire cathode. Small 13:1702551
67. Yan M, He P, Chen Y et al (2018) Water-lubricated intercalation in V 2 O 5 ·nH 2 O for highcapacity and high-rate aqueous rechargeable zinc batteries. Adv Mater 30:1703725
68. He P, Zhang G, Liao X et al (2018) Sodium ion stabilized vanadium oxide nanowire cathode
for high-performance zinc-ion batteries. Adv Energy Mater 8:1702463
69. Cai Y, Liu F, Luo Z et al (2018) Pilotaxitic Na 1.1 V 3 O 7.9 nanoribbons/graphene as highperformance sodium ion battery and aqueous zinc ion battery cathode. Energy Storage Mater
13:168–174
70. Sambandam B, Soundharrajan V, Kim S et al (2018) Aqueous rechargeable Zn-ion batteries:
an imperishable and high-energy Zn 2 V 2 O 7 nanowire cathode through intercalation regulation.
J Mater Chem A 5:3850–3856
71. Xia C, Guo J, Li P et al (2018) Highly stable aqueous zinc-ion storage using layered calcium
vanadium oxide bronze cathode. Angew Chem Int Ed 57:1–7
72. Hu P, Zhu T, Wang X et al (2018) Highly durable Na 2 V 6 O 16 ·1.63H 2 O nanowire cathode for
aqueous zinc-ion battery. Nano Lett 18:1758–1763
73. Kundu D, Vajargah SH, Wan L et al (2018) Aqueous vs. nonaqueous Zn-ion batteries: consequences of the desolvation penalty at the interface. Energy Environ Sci 11:881–892
74. He P, Yan M, Zhang G et al (2017) Layered VS 2 nanosheet-based aqueous Zn ion battery
cathode. Adv Energy Mater 7:1601920
75. Li G, Yang Z, Jiang Y et al (2016) Towards polyvalent ion batteries: a zinc-ion battery based
on NASICON structured Na 3 V 2 (PO 4 ) 3 . Nano Energy 25:211–217
76. Zhou J, Shan L, Wu Z et al (2018) Investigation of V 2 O 5 as a low-cost rechargeable aqueous
zinc ion battery cathode. Chem Commun 54:4457–4460
77. Chen X, Wang L, Li H et al (2019) Porous V 2 O 5 nanofibers as cathode materials for rechargeable aqueous zinc-ion batteries. J Energy Chem 38:20–25
78. Wei T, Li Q, Yang G et al (2018) High-rate and durable aqueous zinc ion battery using dendritic V 10 O 24 ·12H 2 O cathode material with large interlamellar spacing. Electrochim Acta
287:60–67
79. Guo X, Fang G, Zhang W et al (2018) Mechanistic insights of Zn
2+ storage in sodium
Vanadates. Adv Energy Mater 8:1801819
80. Tang B, Zhou J, Fang G et al (2019) Structural modification of V 2 O 5 as high-performance
aqueous zinc-ion battery cathode. J Electrochem Soc 166:A480–A486
81. Shan L, Yang Y, Zhang W (2018) Observation of combination displacement/intercalation
reaction in aqueous zinc-ion battery. Energy Storage Mater 18:10–14
82. Wei T, Li Q, Yang G et al (2018) Highly reversible and long-life cycling aqueous zinc-ion
battery based on ultrathin (NH 4 ) 2 V 10 O 25 ·8H 2 O nanobelts. J Mater Chem A 6:20402–20410
83. Wan F, Zhang L, Dai X et al (2018) Aqueous rechargeable zinc/sodium vanadate batteries with enhanced performance from simultaneous insertion of dual carriers. Nat Commun
9:1656
84. Tang B, Fang G, Zhou J et al (2019) Potassium vanadates with stable structure and fast
ion diffusion channel as cathode for rechargeable aqueous zinc-ion batteries. Nano Energy
51:579–587
85. Peng Z, Wei Q, Tan S et al (2018) Novel layered iron vanadate cathode for high-capacity
aqueous rechargeable zinc batteries. Chem Commun 54:4041–4044
86. Zhang N, Jia M, Dong Y et al (2019) Hydrated layered vanadium oxide as a highly reversible
cathode for rechargeable aqueous zinc batteries. Adv Funct Mater 29:1807331
87. Islam S, Muhammad HA, Dimas YP et al (2019) K
+ intercalated V 2 O5 nanorods with exposed
facets as advanced cathodes for high energy and high rate zinc-ion batteries. J Mater Chem A
7:20335–20347
88. Zhang Y, Hanmei J, Xu L (2019) Ammonium vanadium oxide [(NH 4 ) 2 V 4 O 9 ] sheets for high
capacity electrodes in aqueous zinc ion batteries. ACS Appl Energ Mater 11:7861–7869
Recent Developments of Zinc-Ion Batteries
