254
J. Zhu et al.
68. Peng Z (2011) Oxygen reactions in a non-aqueous Li+ electrolyte. Angew Chem Int Ed
50:6351–6355
69. Li Y (2011) Nitrogen-doped carbon nanotubes as cathode for lithium–air batteries. Electrochem
Commun 13:668–672
70. Li Y (2011) Superior energy capacity of graphene nanosheets for a nonaqueous lithium-oxygen
battery. Chem Commun 47:9438–9440
71. Xiao J (2011) Hierarchically porous graphene as a lithium-air battery electrode. Nano Lett
11:5071–5078
72. Debart A (2008) α-MnO2 nanowires: a catalyst for the O2 electrode in rechargeable lithium
batteries. Angew Chem Int Ed 47:4521–4524
73. Lu Y (2011) A free-standing-type design for cathodes of rechargeable Li–O2 batteries. Energy
Environ Sci 4:4727–4734
74. Lu Y (2010) Platinum−gold nanoparticles: A highly active bifunctional electrocatalyst for
rechargeable lithium−air batteries. J Am Chem Soc 132:12170–12171
75. Zhang S (2011) Heat-treated metal phthalocyanine complex as an oxygen reduction catalyst
for non-aqueous electrolyte Li/air batteries. Electrochim Acta 56:4544–4548
76. Lee S (2010) The influence of catalysts on discharge and charge voltages of rechargeable
Li-oxygen batteries. Electrochem Solid-State Lett 13:A162–A164
77. Grande L (2015) The lithium/air battery: Still an emerging system or a practical reality? Adv
Mater 27:784–800
78. Balaish M (2014) A critical review on lithium-air battery electrolytes. Phys Chem Chem Phys
16:2801–2822
79. Gallagher K (2014) Quantifying the promise of lithium-air batteries for electric vehicles. Energy
Environ Sci. 7:1555–1563
80. Geng D (2016) From lithium-oxygen to lithium-air batteries: Challenges and opportunities.
Adv Energy Mater. 6:1502164
81. Imanishi N (2014) Rechargeable lithium-air batteries: characteristics and prospects. Mater
Today 17:24–30
J. Zhu et al.
68. Peng Z (2011) Oxygen reactions in a non-aqueous Li+ electrolyte. Angew Chem Int Ed
50:6351–6355
69. Li Y (2011) Nitrogen-doped carbon nanotubes as cathode for lithium–air batteries. Electrochem
Commun 13:668–672
70. Li Y (2011) Superior energy capacity of graphene nanosheets for a nonaqueous lithium-oxygen
battery. Chem Commun 47:9438–9440
71. Xiao J (2011) Hierarchically porous graphene as a lithium-air battery electrode. Nano Lett
11:5071–5078
72. Debart A (2008) α-MnO2 nanowires: a catalyst for the O2 electrode in rechargeable lithium
batteries. Angew Chem Int Ed 47:4521–4524
73. Lu Y (2011) A free-standing-type design for cathodes of rechargeable Li–O2 batteries. Energy
Environ Sci 4:4727–4734
74. Lu Y (2010) Platinum−gold nanoparticles: A highly active bifunctional electrocatalyst for
rechargeable lithium−air batteries. J Am Chem Soc 132:12170–12171
75. Zhang S (2011) Heat-treated metal phthalocyanine complex as an oxygen reduction catalyst
for non-aqueous electrolyte Li/air batteries. Electrochim Acta 56:4544–4548
76. Lee S (2010) The influence of catalysts on discharge and charge voltages of rechargeable
Li-oxygen batteries. Electrochem Solid-State Lett 13:A162–A164
77. Grande L (2015) The lithium/air battery: Still an emerging system or a practical reality? Adv
Mater 27:784–800
78. Balaish M (2014) A critical review on lithium-air battery electrolytes. Phys Chem Chem Phys
16:2801–2822
79. Gallagher K (2014) Quantifying the promise of lithium-air batteries for electric vehicles. Energy
Environ Sci. 7:1555–1563
80. Geng D (2016) From lithium-oxygen to lithium-air batteries: Challenges and opportunities.
Adv Energy Mater. 6:1502164
81. Imanishi N (2014) Rechargeable lithium-air batteries: characteristics and prospects. Mater
Today 17:24–30
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