192
6 Nanomaterials for Batteries
Sathiya M, Thomas J, Batuk D, Pimenta V, Gopalan R, Tarascon J-M (2017) Dual stabilization
and sacrificial effect of Na 2 CO 3 for increasing capacities of Na-Ion cells based on P 2 -Na x MO 2
electrodes. Chem Mater 29(14):5948–5956
Sawai K, Ohmae T, Suwaki H, Shiomi M, Osumi S (2007) Idling-stop vehicle road tests of advanced
valve-regulated lead-acid (VRLA) battery. J Power Sources 174(1):54–60
Seh ZW, Sun Y, Zhang Q, Cui Y (2016a) Designing high-energy lithium-sulfur batteries. Chem
Soc Rev 45(20):5605–5634
Seh ZW, Sun Y, Zhang Q, Cui Y (2016b) Designing high-energy lithium–sulfur batteries. Chem
Soc Rev 45(20):5605–5634
Shim J, Striebel KA (2007) Electrochemical characterization of thermally oxidized natural graphite
anodes in lithium-ion batteries. J Power Sources 164(2):862–867
Shim J, Striebel KA, Cairns EJ (2002) The lithium/sulfur rechargeable cell. J Electrochem Soc
149(10):A1321–A1325
Song MY, Lee R (2002) Synthesis by sol–gel method and electrochemical properties of LiNiO 2
cathode material for lithium secondary battery 111(1):97–103
Soria ML, Valenciano J, Ojeda A (2004) Development of ultra high power, valve-regulated lead-acid
batteries for industrial applications. J Power Sources 136(2):376–382
Sources W-J (2011) Structure and performance of LiFePO 4 cathode materials: a review
196(6):2962–2970
Suga et al. (2009) Emerging N-Type Redox-Active Radical Polymer for a Totally Organic PolymerBased Rechargeable Battery. Adv Mater 21:1627–1630
Sun J, Sun Y, Pasta M, Zhou G, Li Y, Liu W, Xiong F, Cui Y (2016) Entrapment of polysulfides by a
black-phosphorus-modified separator for lithium-sulfur batteries. Adv Mater 28(44):9797–9803
Sun WN, Ying JR, Huang Z, Jiang CY, Wan CR (2009) Organic sulfide electrode materials for
lithium-ion batteries. Progress in Chemistry 21(9):1963–1968
Suo L, Hu Y-S, Li H, Armand M, Chen L (2013) A new class of solvent-in-salt electrolyte for
high-energy rechargeable metallic lithium batteries. Nat Commun 4(2):1481
Taniguchi IJI, Research EC (2005) Physical and electrochemical properties of spherical nanostructured LiCr x Mn 2-x O 4 particles synthesized by ultrasonic spray pyrolysis 44 (17):6560–6565
Thackeray MM, David WIF, Bruce PG, Goodenough JB (1983) Lithium insertion into manganese
spinels 18(4):461–472
Tu J, Zhao XB, Xie J, Cao GS, Zhuang DG, Zhu TJ, Tu JP (2007) Enhanced low voltage cycling
stability of LiMn 2 O 4 cathode by ZnO coating for lithium ion batteries 432(1):313–317
Wadsley AD (2010) Crystal chemistry of non-stoichiometric pentavalent vandadium oxides: crystal
structure of Li 1+x V 3 O 8 10(4):261–267
Wang D, Li H, Shi S, Huang X, Chen L (2005) Improving the rate performance of LiFePO 4 by
Fe-site doping 50(14):2955–2958
Wang DP, Fu M, Ha Y, Wang H, Wu R (2018) Metal-organic framework-derived mesoporous
octahedral copper oxide/titania composites for high-performance lithium-ion batteries. J Colloid
Interf Sci 529:265–272
Wang GX, Bewlay SL, Konstantinov K, Liu HK, Dou SX, Ahn J.-H (2004) Physical and
electrochemical properties of doped lithium iron phosphate electrodes 50(2):443–447
Wang H, Yang Y, Liang Y, Robinson JT, Li Y, Jackson A, Cui Y, Dai H (2011) Graphene-wrapped
sulfur particles as a rechargeable lithium-sulfur battery cathode material with high capacity and
cycling stability. Nano Lett 11(7):2644–2647
Wang J, Yang J, Wan C, Du K, Xie J, Xu N (2003) Sulfur composite cathode materials for
rechargeable lithium batteries. Adv Func Mater 13(6):487–492
Wang J, Yang J, Xie J, Xu N (2002) A novel conductive polymer-sulfur composite cathode material
for rechargeable lithium batteries. Adv Mater 14(13–14):963–965
Wang JW, He Y, Fan F, Liu XH, Xia S, Liu Y, Harris CT, Li H, Huang JY, Mao SX, Zhu T (2013)
Two-phase electrochemical lithiation in amorphous silicon. Nano Lett 13(2):709–715
Wang Y, Jin Y, Jia M (2018) Ultralong Fe 3 O 4 nanowires embedded graphene aerogel composite
anodes for lithium ion batteries. Mater Lett 228:395–398
6 Nanomaterials for Batteries
Sathiya M, Thomas J, Batuk D, Pimenta V, Gopalan R, Tarascon J-M (2017) Dual stabilization
and sacrificial effect of Na 2 CO 3 for increasing capacities of Na-Ion cells based on P 2 -Na x MO 2
electrodes. Chem Mater 29(14):5948–5956
Sawai K, Ohmae T, Suwaki H, Shiomi M, Osumi S (2007) Idling-stop vehicle road tests of advanced
valve-regulated lead-acid (VRLA) battery. J Power Sources 174(1):54–60
Seh ZW, Sun Y, Zhang Q, Cui Y (2016a) Designing high-energy lithium-sulfur batteries. Chem
Soc Rev 45(20):5605–5634
Seh ZW, Sun Y, Zhang Q, Cui Y (2016b) Designing high-energy lithium–sulfur batteries. Chem
Soc Rev 45(20):5605–5634
Shim J, Striebel KA (2007) Electrochemical characterization of thermally oxidized natural graphite
anodes in lithium-ion batteries. J Power Sources 164(2):862–867
Shim J, Striebel KA, Cairns EJ (2002) The lithium/sulfur rechargeable cell. J Electrochem Soc
149(10):A1321–A1325
Song MY, Lee R (2002) Synthesis by sol–gel method and electrochemical properties of LiNiO 2
cathode material for lithium secondary battery 111(1):97–103
Soria ML, Valenciano J, Ojeda A (2004) Development of ultra high power, valve-regulated lead-acid
batteries for industrial applications. J Power Sources 136(2):376–382
Sources W-J (2011) Structure and performance of LiFePO 4 cathode materials: a review
196(6):2962–2970
Suga et al. (2009) Emerging N-Type Redox-Active Radical Polymer for a Totally Organic PolymerBased Rechargeable Battery. Adv Mater 21:1627–1630
Sun J, Sun Y, Pasta M, Zhou G, Li Y, Liu W, Xiong F, Cui Y (2016) Entrapment of polysulfides by a
black-phosphorus-modified separator for lithium-sulfur batteries. Adv Mater 28(44):9797–9803
Sun WN, Ying JR, Huang Z, Jiang CY, Wan CR (2009) Organic sulfide electrode materials for
lithium-ion batteries. Progress in Chemistry 21(9):1963–1968
Suo L, Hu Y-S, Li H, Armand M, Chen L (2013) A new class of solvent-in-salt electrolyte for
high-energy rechargeable metallic lithium batteries. Nat Commun 4(2):1481
Taniguchi IJI, Research EC (2005) Physical and electrochemical properties of spherical nanostructured LiCr x Mn 2-x O 4 particles synthesized by ultrasonic spray pyrolysis 44 (17):6560–6565
Thackeray MM, David WIF, Bruce PG, Goodenough JB (1983) Lithium insertion into manganese
spinels 18(4):461–472
Tu J, Zhao XB, Xie J, Cao GS, Zhuang DG, Zhu TJ, Tu JP (2007) Enhanced low voltage cycling
stability of LiMn 2 O 4 cathode by ZnO coating for lithium ion batteries 432(1):313–317
Wadsley AD (2010) Crystal chemistry of non-stoichiometric pentavalent vandadium oxides: crystal
structure of Li 1+x V 3 O 8 10(4):261–267
Wang D, Li H, Shi S, Huang X, Chen L (2005) Improving the rate performance of LiFePO 4 by
Fe-site doping 50(14):2955–2958
Wang DP, Fu M, Ha Y, Wang H, Wu R (2018) Metal-organic framework-derived mesoporous
octahedral copper oxide/titania composites for high-performance lithium-ion batteries. J Colloid
Interf Sci 529:265–272
Wang GX, Bewlay SL, Konstantinov K, Liu HK, Dou SX, Ahn J.-H (2004) Physical and
electrochemical properties of doped lithium iron phosphate electrodes 50(2):443–447
Wang H, Yang Y, Liang Y, Robinson JT, Li Y, Jackson A, Cui Y, Dai H (2011) Graphene-wrapped
sulfur particles as a rechargeable lithium-sulfur battery cathode material with high capacity and
cycling stability. Nano Lett 11(7):2644–2647
Wang J, Yang J, Wan C, Du K, Xie J, Xu N (2003) Sulfur composite cathode materials for
rechargeable lithium batteries. Adv Func Mater 13(6):487–492
Wang J, Yang J, Xie J, Xu N (2002) A novel conductive polymer-sulfur composite cathode material
for rechargeable lithium batteries. Adv Mater 14(13–14):963–965
Wang JW, He Y, Fan F, Liu XH, Xia S, Liu Y, Harris CT, Li H, Huang JY, Mao SX, Zhu T (2013)
Two-phase electrochemical lithiation in amorphous silicon. Nano Lett 13(2):709–715
Wang Y, Jin Y, Jia M (2018) Ultralong Fe 3 O 4 nanowires embedded graphene aerogel composite
anodes for lithium ion batteries. Mater Lett 228:395–398
