Page 399 - Polymer-based Nanocomposites for Energy and Environmental Applications
P. 399
356 Polymer-based Nanocomposites for Energy and Environmental Applications
[3] Global Battery Market for Energy Storage Systems 2015–2019, TECHNAVIO.COM.
[4] Luo X, Wang J, Dooner M, Clarke J. Overview of current development in electrical energy
storage technologies and the application potential in power system operation. Appl Energy
2015;137:511–36.
[5] Global Li-Ion Battery Market, 2015–2019, TECHNAVIO.COM.
[6] Yabuuchi N, Kubota K, Dahbi M, Komaba S. Research development on sodium-ion
batteries. Chem Rev 2014;114:11636–82.
[7] Carmichael RS. Practical handbook of physical properties of rocks and minerals. Boca
Raton, FL: CRC Press, 1988.
[8] Mass e RC, Uchaker E, Cao G. Beyond Li-ion: electrode materials for sodium- and
magnesium-ion batteries. Sci China Mater 2015;58:715–66.
[9] Ellis BL, Nazar LF. Sodium and sodium-ion energy storage batteries. Curr Opin Solid
State Mater Sci 2012;16:168–77.
[10] Kim Y, Ha K-H, Oh SM, Lee KT. High-capacity anode materials for sodium-ion batteries.
Chem Eur J 2014;20:11980–92.
[11] Pampal ES, Stojanovska E, Simon B, Kilic A. A review of nanofibrous structures in
lithium ion batteries. J Power Sources 2015;300:199–215.
[12] Aravindan V, Sundaramurthy J, Kumar PS, Lee YS, Ramakrixhna S, Madhavi S.
Electrospun nanofibers: a prospective electro-active material for constructing high perfor-
mance Li-ion batteries. Chem Commun 2015;51:2225–34.
[13] Stojanovska E, Canbay E, Pampal ES, Calisir MD, Agma O, Polat Y, et al. A review on
non-electro nanofibre spinning techniques. RSC Adv 2016;6:83783–801. https://doi.org/
10.1039/C6RA16986D [Epub ahead of print].
[14] Dong Z, Kennedy SJ, Wu Y. Electrospinning materials for energy-related applications and
devices. J Power Sources 2011;196:4886–904.
[15] Lee B-S, Son S-B, Park K-M, Seo J-H, Lee S-H, In-S C, et al. Fabrication of Si core/C shell
nanofibers and their electrochemical performances as a lithium-ion battery anode. J Power
Sources 2012;206:267–73.
[16] Nam D-H, Lee J-H, Kim N-R, Lee Y-Y, Yeon H-W, Lee S-Y, et al. One-step structure
modulation of electrospun metal-loaded carbon nanofibers: redox reaction controlled
calcination. Carbon 2015;82:273–81.
[17] Ji L, Zhang X. Fabrication of porous carbon nanofibers and their application as anode
materials for rechargeable lithium-ion batteries. Nanotechnology 2009;20:155705.
[18] Hosono E, Wang Y, Kida N, Enomoto M, Kojima N, Okubo M, et al. Synthesis of Triaxial
LiFePO 4 nanowire with a VGCF core column and a carbon shell through the
electrospinning method. ACS Appl Mater Interfaces 2010;2:212–8.
[19] Chen D, Miao Y-E, Liu T. Electrically conductive polyaniline/polyimide nanofiber
membranes prepared via a combination of electrospinning and subsequent in situ poly-
merization growth. ACS Appl Mater Interfaces 2013;5:1206–12.
[20] Yu JJ, Yang J, Nie WB, Li ZH, Liu EH, Lei GT, et al. A porous vanadium pentoxide nano-
material as cathode material for rechargeable lithium batteries. Electrochim Acta
2013;89:292–9.
[21] Nagamine S, Kosaka K, Tohyama S, Ohshima M. Silica nanofiber with hierarchical pore
structure templated by a polymer blend nanofiber and surfactant micelle. Mater Res Bull
2014;50:108–12.
[22] Liu H, Cao C-Y, Wei F-F, Jiamg Y, Sun Y-B, Huang P-P, et al. Fabrication of
macroporous/mesoporous carbon nanofiber using CaCO 3 nanoparticles as dual purpose
template and its application as catalyst support. J Phys Chem C 2013;117:21426–32.