Page 343 - Polymer-based Nanocomposites for Energy and Environmental Applications
P. 343
310 Polymer-based Nanocomposites for Energy and Environmental Applications
[63] Chew K, Tan K. The effects of ceramic fillers on PMMA-based polymer electrolyte
salted with lithium triflate, LiCF 3 SO 3 . Int J Electrochem Sci 2011;6(11):5792–801.
[64] Xi J, Qiu X, Li J, Tang X, Zhu W, Chen L. PVDF–PEO blends based microporous poly-
mer electrolyte: effect of PEO on pore configurations and ionic conductivity. J Power
Sources 2006;157(1):501–6.
[65] Ferrari S, Quartarone E, Mustarelli P, Magistris A, Fagnoni M, Protti S, et al. Lithium ion
conducting PVdF-HFP composite gel electrolytes based on N-methoxyethyl-N-
methylpyrrolidinium bis(trifluoromethanesulfonyl)-imide ionic liquid. J Power Sources
2010;195(2):559–66.
[66] Tominaga Y. Ion-conductive polymer electrolytes based on poly (ethylene carbonate)
and its derivatives. Polym J 2017;49:291–9.
[67] Porcarelli L, Shaplov AS, Salsamendi M, Nair JR, Vygodskii YS, Mecerreyes D, et al.
Single-ion block copoly(ionic liquid)s as electrolytes for all-solid state lithium batteries.
ACS Appl Mater Interfaces 2016;8(16):10350–9.
[68] Shaplov AS, Marcilla R, Mecerreyes D. Recent advances in innovative polymer electro-
lytes based on poly(ionic liquid)s. Electrochim Acta 2015;175:18–34.
[69] Lee JK, Oh C, Kim N, Hwang J-Y, Sun Y-K. Rational design of silicon-based composites
for high-energy storage devices. J Mater Chem A 2016;4(15):5366–84.
[70] Kasavajjula U, Wang C, Appleby AJ. Nano- and bulk-silicon-based insertion anodes for
lithium-ion secondary cells. J Power Sources 2007;163(2):1003–39.
[71] Obrovac M, Christensen L. Structural changes in silicon anodes during lithium insertion/
extraction. Electrochem Solid-State Lett 2004;7(5):A93–6.
[72] Van Havenbergh K, Turner S, Marx N, Van Tendeloo G. The mechanical behavior
during (de)lithiation of coated silicon nanoparticles as anode material for lithium-
ion batteries studied by in situ transmission electron microscopy. Energy Technol
2016;4(8):1005–12.
[73] Mazouzi D, Karkar Z, Reale Hernandez C, Jimenez Manero P, Guyomard D, Rou eL,
et al. Critical roles of binders and formulation at multiscales of silicon-based composite
electrodes. J Power Sources 2015;280:533–49.
[74] Ryou M-H, Kim J, Lee I, Kim S, Jeong YK, Hong S, et al. Mussel-inspired adhesive
binders for high-performance silicon nanoparticle anodes in lithium-ion batteries. Adv
Mater 2013;25(11):1571–6.
[75] Shi Y, Yu G. Designing hierarchically nanostructured conductive polymer gels for
electrochemical energy storage and conversion. Chem Mater 2016;28(8):2466–77.
[76] Choi J, Kim K, Jeong J, Cho KY, Ryou M-H, Lee YM. Highly adhesive and soluble
copolyimide binder: Improving the long-term cycle life of silicon anodes in lithium-
ion batteries. ACS Appl Mater Interfaces 2015;7(27):14851–8.
[77] Chao D, Xia X, Liu J, Fan Z, Ng CF, Lin J, et al. A V 2 O 5 /conductive-polymer core/shell
nanobelt array on three-dimensional graphite foam: a high-rate, ultrastable, and freestan-
ding cathode for lithium-ion batteries. Adv Mater 2014;26(33):5794–800.
[78] Liu H, Zhang F, Li W, Zhang X, Lee C-S, Wang W, et al. Porous tremella-like MoS 2 /
polyaniline hybrid composite with enhanced performance for lithium-ion battery anodes.
Electrochim Acta 2015;167:132–8.
[79] Liu J, Zhou W, Lai L, Yang H, Hua Lim S, Zhen Y, et al. Three dimensionals α-Fe 2 O 3 /
polypyrrole (Ppy) nanoarray as anode for micro lithium ion batteries. Nano Energy
2013;2(5):726–32.
[80] Kwon YH, Minnici K, Huie MM, Takeuchi KJ, Takeuchi ES, Marschilok AC, et al. Elec-
tron/ion transport enhancer in high capacity Li-ion battery anodes. Chem Mater 2016;28
(18):6689–97.