190
6 Nanomaterials for Batteries
Han CP, He YB, Liu M, Li BH, Yang QH, Wong CP, Kang FY (2017) A review of gassing behavior
in Li 4 Ti 5 O 12 -based lithium ion batteries. J Mater Chem A 5(14):6368–6381
Han S-C, Kim K-W, Ahn H-J, Ahn J-H, Lee J-Y (2003) Charge–discharge mechanism of
mechanically alloyed NiS used as a cathode in rechargeable lithium batteries. J Alloy Compd
361(1):247–251
Hassoun J, Scrosati B (2010) Moving to a solid-state configuration: a valid approach to making
lithium-sulfur batteries viable for practical applications. Adv Mater 22(45):5198–5201
Herbert D, Ulam J (1962). U.S. Patent 3043896
Hong LYWJL (2014) Fundamental scientific aspects of lithium ion batteries (IX)—nonaqueous
electrolyte materials. Energy Storage Sci Technol 3(3):262–282
Hwang J-Y, Kim HM, Lee S-K, Lee J-H, Abouimrane A, Khaleel MA, Belharouak I, Manthiram
A, Sun Y-K (2016) High-energy, high-rate, lithium-sulfur batteries: synergetic effect of hollow
TiO 2 -webbed carbon nanotubes and a dual functional carbon-paper interlayer. Adv Energy Mater
6(1):1501480
Jeong ED, Won MS, Shim Y (1998) Cathodic properties of a lithium-ion secondary battery using
LiCoO 2 prepared by a complex formation reaction 70 (1):70–77
Ji X, Nazar LF (2010) Advances in Li–S batteries. J Mater Chem 20(44):9821–9826
Jin K, Katayama Y, Miura T, Kishi T (1998) Lithium insertion behaviour of Li1+xV 3 O 8 prepared
by precipitation technique in CH 3 OH. 110(3–4):199–207
Jung Y, Kim S (2007) New approaches to improve cycle life characteristics of lithium-sulfur cells.
Electrochem Commun 9(2):249–254
Kakuda T, Uematsu K, Toda K, Sato M (2007) Electrochemical performance of Al-doped LiMn 2 O 4
prepared by different methods in solid-state reaction. 167(2):499–503
Kanno R, Kubo H, Kawamoto Y, Kamiyama T, Izumi F, Takeda Y, Takano M (1994) Phase
relationship and lithium deintercalation in lithium nickel oxides 110(110):216–225
Kim S-W, Seo D-H, Ma X, Ceder G, Kang K (2012) Electrode Materials for rechargeable sodium-ion
batteries: potential alternatives to current lithium-ion batteries. Adv Energy Mater 2(7):710–721
Kumagai N, Ooto H, Kumagai N (1997) Preparation and electrochemical characteristics of
quaternary Li-Mn–V–O spinel as the positive materials for rechargeable lithium batteries
68(2):600–603
Kumar V, Kameswara Rao PV, Rawal A (2017) Amplification of electrolyte uptake in the absorptive
glass mat (AGM) separator for valve regulated lead acid (VRLA) batteries. J Power Sources
341:19–26
Lee J-S, Tai Kim S, Cao R, Choi N-S, Liu M, Lee KT, Cho J (2011) Metal-air batteries with high
energy density: Li-Air versus Zn-Air. Adv Energy Mater 1(1):34–50
Lee J, Wu Y, Peng Z (2018) Hetero-nanostructured materials for high-power lithium ion batteries.
J Colloid Interf Sci 529:505–519
Lee JI, Choi NS, Park S (2012) Highly stable Si-based multicomponent anodes for practical use in
lithium-ion batteries. Energy Environ Sci 5(7):7878–7882
Lee SW, Kim KS, Moon HS, Kim HJ, Cho BW, Cho WI, Ju JB, Park J (2004) Electrochemical
characteristics of Al 2 O 3 -coated lithium manganese spinel as a cathode material for a lithium
secondary battery 126(1):150–155
Leghié P, Lelieur JP, Levillain E (2002) Comments on the mechanism of the electrochemical
reduction of sulphur in dimethylformamide. Electrochem Commun 4(5):406–411
Li H, Wang Z, Chen L, Huang XJAM (2010) Research on Advanced Materials for Li-ion Batteries.
21 (45):4593-4607
Li Q, Zhu S, Lu Y (2017) 3D porous cu current collector/Li-metal composite anode for stable
lithium-metal batteries. Adv Func Mater 27(18):1606422
Li Y, Dai H (2014) Recent advances in zinc-air batteries. Chem Soc Rev 43(15):5257–5275
Li Y, Gong M, Liang Y, Feng J, Kim JE, Wang H, Hong G, Zhang B, Dai H (2013) Advanced
zinc-air batteries based on high-performance hybrid electrocatalysts. Nature Commun 4:1805
Liu et al. (2012) In situ atomic-scale imaging of electrochemical lithiation insilicon[J].Nat Nano
7(11):749–756
6 Nanomaterials for Batteries
Han CP, He YB, Liu M, Li BH, Yang QH, Wong CP, Kang FY (2017) A review of gassing behavior
in Li 4 Ti 5 O 12 -based lithium ion batteries. J Mater Chem A 5(14):6368–6381
Han S-C, Kim K-W, Ahn H-J, Ahn J-H, Lee J-Y (2003) Charge–discharge mechanism of
mechanically alloyed NiS used as a cathode in rechargeable lithium batteries. J Alloy Compd
361(1):247–251
Hassoun J, Scrosati B (2010) Moving to a solid-state configuration: a valid approach to making
lithium-sulfur batteries viable for practical applications. Adv Mater 22(45):5198–5201
Herbert D, Ulam J (1962). U.S. Patent 3043896
Hong LYWJL (2014) Fundamental scientific aspects of lithium ion batteries (IX)—nonaqueous
electrolyte materials. Energy Storage Sci Technol 3(3):262–282
Hwang J-Y, Kim HM, Lee S-K, Lee J-H, Abouimrane A, Khaleel MA, Belharouak I, Manthiram
A, Sun Y-K (2016) High-energy, high-rate, lithium-sulfur batteries: synergetic effect of hollow
TiO 2 -webbed carbon nanotubes and a dual functional carbon-paper interlayer. Adv Energy Mater
6(1):1501480
Jeong ED, Won MS, Shim Y (1998) Cathodic properties of a lithium-ion secondary battery using
LiCoO 2 prepared by a complex formation reaction 70 (1):70–77
Ji X, Nazar LF (2010) Advances in Li–S batteries. J Mater Chem 20(44):9821–9826
Jin K, Katayama Y, Miura T, Kishi T (1998) Lithium insertion behaviour of Li1+xV 3 O 8 prepared
by precipitation technique in CH 3 OH. 110(3–4):199–207
Jung Y, Kim S (2007) New approaches to improve cycle life characteristics of lithium-sulfur cells.
Electrochem Commun 9(2):249–254
Kakuda T, Uematsu K, Toda K, Sato M (2007) Electrochemical performance of Al-doped LiMn 2 O 4
prepared by different methods in solid-state reaction. 167(2):499–503
Kanno R, Kubo H, Kawamoto Y, Kamiyama T, Izumi F, Takeda Y, Takano M (1994) Phase
relationship and lithium deintercalation in lithium nickel oxides 110(110):216–225
Kim S-W, Seo D-H, Ma X, Ceder G, Kang K (2012) Electrode Materials for rechargeable sodium-ion
batteries: potential alternatives to current lithium-ion batteries. Adv Energy Mater 2(7):710–721
Kumagai N, Ooto H, Kumagai N (1997) Preparation and electrochemical characteristics of
quaternary Li-Mn–V–O spinel as the positive materials for rechargeable lithium batteries
68(2):600–603
Kumar V, Kameswara Rao PV, Rawal A (2017) Amplification of electrolyte uptake in the absorptive
glass mat (AGM) separator for valve regulated lead acid (VRLA) batteries. J Power Sources
341:19–26
Lee J-S, Tai Kim S, Cao R, Choi N-S, Liu M, Lee KT, Cho J (2011) Metal-air batteries with high
energy density: Li-Air versus Zn-Air. Adv Energy Mater 1(1):34–50
Lee J, Wu Y, Peng Z (2018) Hetero-nanostructured materials for high-power lithium ion batteries.
J Colloid Interf Sci 529:505–519
Lee JI, Choi NS, Park S (2012) Highly stable Si-based multicomponent anodes for practical use in
lithium-ion batteries. Energy Environ Sci 5(7):7878–7882
Lee SW, Kim KS, Moon HS, Kim HJ, Cho BW, Cho WI, Ju JB, Park J (2004) Electrochemical
characteristics of Al 2 O 3 -coated lithium manganese spinel as a cathode material for a lithium
secondary battery 126(1):150–155
Leghié P, Lelieur JP, Levillain E (2002) Comments on the mechanism of the electrochemical
reduction of sulphur in dimethylformamide. Electrochem Commun 4(5):406–411
Li H, Wang Z, Chen L, Huang XJAM (2010) Research on Advanced Materials for Li-ion Batteries.
21 (45):4593-4607
Li Q, Zhu S, Lu Y (2017) 3D porous cu current collector/Li-metal composite anode for stable
lithium-metal batteries. Adv Func Mater 27(18):1606422
Li Y, Dai H (2014) Recent advances in zinc-air batteries. Chem Soc Rev 43(15):5257–5275
Li Y, Gong M, Liang Y, Feng J, Kim JE, Wang H, Hong G, Zhang B, Dai H (2013) Advanced
zinc-air batteries based on high-performance hybrid electrocatalysts. Nature Commun 4:1805
Liu et al. (2012) In situ atomic-scale imaging of electrochemical lithiation insilicon[J].Nat Nano
7(11):749–756
