56
89. Wang L, Huang K-W et al (2019) Ultralong cycle stability of aqueous zinc-ion batteries with
zinc vanadium oxide cathodes. Sci Adv 5:eaax4279
90. Geng H, Min C et al (2020) Electronic structure regulation of layered vanadium oxide via
interlayer doping strategy toward superior high-rate and low-temperature zinc-ion batteries.
Adv Funct Mater 30:1907684
91. Yang F, Yuanmin Z et al (2020) Fast Zn
2+ kinetics of vanadium oxide nanotubes in highperformance rechargeable zinc-ion batteries. J Power Sources 451:227767
92. Zhang L, Chen L, Zhou X (2015) Towards high-voltage aqueous metal-ion batteries beyond
1.5 V: the zinc/zinc hexacyanoferrate system. Adv Energy Mater 5:1400930
93. Zhang L, Chen L, Zhou X et al (2015) Morphology-dependent electrochemical performance
of zinc hexacyanoferrate cathode for zinc-ion battery. Sci Rep 5:18263
94. Trócoli R, Mantia FL (2015) An aqueous zinc-ion battery based on copper hexacyanoferrate.
ChemSusChem 8:481–485
95. Desai D, Wei X, Steingart DA et al (2014) Electrodeposition of preferentially oriented zinc
for flow-assisted alkaline batteries. J Power Sour 256:145–152
96. Jia Z, Wang B, Wang Y (2015) Copper hexacyanoferrate with a well-defined open framework
as a positive electrode for aqueous zinc ion batteries. Mater Chem Phys 149-150:601–606
97. Chae MS, Heo JW, Lim SC et al (2016) Electrochemical zinc-ion intercalation properties and
crystal structures of ZnMo 6 S 8 and Zn 2 Mo 6 S 8 chevrel phases in aqueous electrolytes. Inorg
Chem 55:3294–3301
98. Chen Y, Luo L, Zhong L et al (2016) Highly reversible zinc-ion intercalation into chevrel
phase Mo6S8 nanocubes and applications for advanced zinc-ion batteries. ACS Appl Mater
Interfaces 8:13673–13677
99. Kaveevivitchai W, Manthiram A (2016) High-capacity zinc-ion storage in an open-tunnel
oxide for aqueous and nonaqueous Zn-ion batteries. J Mater Chem A 4:18737–18741
100. Minakshi M, Singh P, Carter M et al (2015) The Zn-MnO 2 battery: the influence of aqueous
LiOH and KOH electrolytes on the intercalation mechanism. Electrochem Solid-State Lett
11:A145–A149
101. Han S, Rajput NN, Qu X et al (2016) Origin of electrochemical, structural, and transport
properties in nonaqueous zinc electrolytes. ACS Appl Mater Interfaces 8:3021–3031
102. Han S, Kim S, Li D et al (2017) Mechanism of Zn insertion into nanostructured δ-MnO 2 : a
nonaqueous rechargeable Zn metal battery. Chem Mater 29:4874–4884
103. Liu Z, Pulletikurthi G, Endres F (2016) A prussian blue/zinc secondary battery with a bioionic liquid− water mixture as electrolyte. ACS Appl Mater Interfaces 8:12158–12164
104. Chae MS, Heo JW, Kwak HH et al (2016) Organic electrolyte-based rechargeable zinc-ion
batteries using potassium nickel hexacyanoferrate as a cathode material. J Power Sources
337:204–211
105. Tafur JP, Abad J, Román E et al (2015) Charge storage mechanism of MnO 2 cathodes in
Zn/MnO 2 batteries using ionic liquid-based gel polymer electrolytes. Electrochem Commun
60:190–194
106. Tafur JP, Fernández Romero AJ (2015) Interaction between Zn
2+ cations and n-methyl-2pyrrolidone in ionic liquid-based gel polymer electrolytes for Zn batteries. Electrochim Acta
176:1447–1453
107. Soundharrajan V, Sambandam B, Kim S et al (2018) Na 2 V 6 O 16 ·3H 2 O barnesite nanorod: an
open door to display a stable and high energy for aqueous rechargeable Zn-ion batteries as
cathodes. Nano Lett 18:2402–2410
108. Zhang N, Dong Y, Jia M et al (2018) Rechargeable aqueous Zn–V 2 O 5 battery with high
energy density and long cycle life. ACS Energ Lett 3:1366–1372
109. Stoševski I, Bonakdarpour A, Cuadra F et al (2019) Highly crystalline ramsdellite as a cathode material for near-neutral aqueous MnO 2 /Zn batteries. Chem Commun 55:2082–2085
110. Xiaoming X, Fangyu X, Jiashen M et al (2020) Vanadium-based nanomaterials: a promising
family for emerging metal-ion batteries. Adv Funct Mater 30:1904398
J. Kim et al.
89. Wang L, Huang K-W et al (2019) Ultralong cycle stability of aqueous zinc-ion batteries with
zinc vanadium oxide cathodes. Sci Adv 5:eaax4279
90. Geng H, Min C et al (2020) Electronic structure regulation of layered vanadium oxide via
interlayer doping strategy toward superior high-rate and low-temperature zinc-ion batteries.
Adv Funct Mater 30:1907684
91. Yang F, Yuanmin Z et al (2020) Fast Zn
2+ kinetics of vanadium oxide nanotubes in highperformance rechargeable zinc-ion batteries. J Power Sources 451:227767
92. Zhang L, Chen L, Zhou X (2015) Towards high-voltage aqueous metal-ion batteries beyond
1.5 V: the zinc/zinc hexacyanoferrate system. Adv Energy Mater 5:1400930
93. Zhang L, Chen L, Zhou X et al (2015) Morphology-dependent electrochemical performance
of zinc hexacyanoferrate cathode for zinc-ion battery. Sci Rep 5:18263
94. Trócoli R, Mantia FL (2015) An aqueous zinc-ion battery based on copper hexacyanoferrate.
ChemSusChem 8:481–485
95. Desai D, Wei X, Steingart DA et al (2014) Electrodeposition of preferentially oriented zinc
for flow-assisted alkaline batteries. J Power Sour 256:145–152
96. Jia Z, Wang B, Wang Y (2015) Copper hexacyanoferrate with a well-defined open framework
as a positive electrode for aqueous zinc ion batteries. Mater Chem Phys 149-150:601–606
97. Chae MS, Heo JW, Lim SC et al (2016) Electrochemical zinc-ion intercalation properties and
crystal structures of ZnMo 6 S 8 and Zn 2 Mo 6 S 8 chevrel phases in aqueous electrolytes. Inorg
Chem 55:3294–3301
98. Chen Y, Luo L, Zhong L et al (2016) Highly reversible zinc-ion intercalation into chevrel
phase Mo6S8 nanocubes and applications for advanced zinc-ion batteries. ACS Appl Mater
Interfaces 8:13673–13677
99. Kaveevivitchai W, Manthiram A (2016) High-capacity zinc-ion storage in an open-tunnel
oxide for aqueous and nonaqueous Zn-ion batteries. J Mater Chem A 4:18737–18741
100. Minakshi M, Singh P, Carter M et al (2015) The Zn-MnO 2 battery: the influence of aqueous
LiOH and KOH electrolytes on the intercalation mechanism. Electrochem Solid-State Lett
11:A145–A149
101. Han S, Rajput NN, Qu X et al (2016) Origin of electrochemical, structural, and transport
properties in nonaqueous zinc electrolytes. ACS Appl Mater Interfaces 8:3021–3031
102. Han S, Kim S, Li D et al (2017) Mechanism of Zn insertion into nanostructured δ-MnO 2 : a
nonaqueous rechargeable Zn metal battery. Chem Mater 29:4874–4884
103. Liu Z, Pulletikurthi G, Endres F (2016) A prussian blue/zinc secondary battery with a bioionic liquid− water mixture as electrolyte. ACS Appl Mater Interfaces 8:12158–12164
104. Chae MS, Heo JW, Kwak HH et al (2016) Organic electrolyte-based rechargeable zinc-ion
batteries using potassium nickel hexacyanoferrate as a cathode material. J Power Sources
337:204–211
105. Tafur JP, Abad J, Román E et al (2015) Charge storage mechanism of MnO 2 cathodes in
Zn/MnO 2 batteries using ionic liquid-based gel polymer electrolytes. Electrochem Commun
60:190–194
106. Tafur JP, Fernández Romero AJ (2015) Interaction between Zn
2+ cations and n-methyl-2pyrrolidone in ionic liquid-based gel polymer electrolytes for Zn batteries. Electrochim Acta
176:1447–1453
107. Soundharrajan V, Sambandam B, Kim S et al (2018) Na 2 V 6 O 16 ·3H 2 O barnesite nanorod: an
open door to display a stable and high energy for aqueous rechargeable Zn-ion batteries as
cathodes. Nano Lett 18:2402–2410
108. Zhang N, Dong Y, Jia M et al (2018) Rechargeable aqueous Zn–V 2 O 5 battery with high
energy density and long cycle life. ACS Energ Lett 3:1366–1372
109. Stoševski I, Bonakdarpour A, Cuadra F et al (2019) Highly crystalline ramsdellite as a cathode material for near-neutral aqueous MnO 2 /Zn batteries. Chem Commun 55:2082–2085
110. Xiaoming X, Fangyu X, Jiashen M et al (2020) Vanadium-based nanomaterials: a promising
family for emerging metal-ion batteries. Adv Funct Mater 30:1904398
J. Kim et al.
