Page 301 - Polymer-based Nanocomposites for Energy and Environmental Applications
P. 301
270 Polymer-based Nanocomposites for Energy and Environmental Applications
[7] Arani AAK, Karami H, Gharehpetian GB, Hejazi MSA. Review of flywheel energy stor-
age systems structures and applications in power systems and microgrids. Renew Sust
Energ Rev 2017;69:9–18.
[8] Sarwar S, Chen W, Waheed R. Electricity consumption, oil price and economic growth:
global perspective. Renew Sust Energ Rev 2017;76:9–18.
[9] Owusu PA, Asumadu-Sarkodie SA. Review of renewable energy sources, sustainability
issues and climate change mitigation. Cogent Eng 2016;3(1)1167990.
[10] Beaudin M, Zareipour H, Schellenberglabe A, Rosehart W. Energy storage for mitigating
the variability of renewable electricity sources: an updated review. Energy Sustain Dev
2010;14(4):302–14.
[11] Elliman R, Gould C, Al-Tai M, editors. Review of current and future electrical energy
storage devices. 2015 50th international universities power engineering conference
(UPEC), 1–4 September; 2015.
[12] HannanMA,HoqueMM,Mohamed A,AyobA.Reviewofenergystoragesystemsforelec-
tric vehicle applications: issues and challenges. Renew Sust Energ Rev 2017;69:771–89.
[13] Paul DR, Robeson LM. Polymer nanotechnology: nanocomposites. Polymer 2008;49
(15):3187–204.
[14] Chou T-W, Sun C-T, editors. Nanocomposites. Lancaster, PA: DEStech Publications;
2012.
[15] Sengodu P, Deshmukh AD. Conducting polymers and their inorganic composites for
advanced Li-ion batteries: a review. RSC Adv 2015;5(52):42109–30.
[16] Tang C, Hackenberg K, Fu Q, Ajayan PM, Ardebili H. High ion conducting polymer
nanocomposite electrolytes using hybrid nanofillers. Nano Lett 2012;12(3):1152–6.
[17] Crosby AJ, Lee J-Y. Polymer nanocomposites: the “nano” effect on mechanical proper-
ties. Polym Rev 2007;47(2):217–29.
[18] Ram A. The chemistry of polymers. Fundamentals of polymer engineering. Boston, MA:
Springer; 1997. p. 5–32.
[19] Kumar A, Gupta RK. Effect of chemical structure on polymer properties. In: Kumar A,
Gupta RK, editors. Fundamentals of polymer engineering, revised and expanded. Plastics
engineering. USA: CRC Press; 2003. p. 45–102.
[20] Yang J, Liu Y, Liu S, Li L, Zhang C, Liu T. Conducting polymer composites: material
synthesis and applications in electrochemical capacitive energy storage. Mater Chem
Front 2017;1(2):251–68.
[21] Das TK, Prusty S. Review on conducting polymers and their applications. Polym-Plast
Technol Eng 2012;51(14):1487–500.
[22] Otero TF, Cantero I. Conducting polymers as positive electrodes in rechargeable lithium-
ion batteries. J Power Sources 1999;81–82:838–41.
[23] Abdelhamid ME, O’Mullane AP, Snook GA. Storing energy in plastics: a review on con-
ducting polymers & their role in electrochemical energy storage. RSC Adv 2015;5
(15):11611–26.
[24] Han X, Chang C, Yuan L, Sun T, Sun J. Aromatic carbonyl derivative polymers as high-
performance Li-ion storage materials. Adv Mater 2007;19(12):1616–21.
[25] Shown I, Ganguly A, Chen L-C, Chen K-H. Conducting polymer-based flexible super-
capacitor. Energy Sci Eng 2015;3(1):2–26.
[26] Wang H, Lin J, Shen ZX. Polyaniline (PANi) based electrode materials for energy storage
and conversion. J Sci Adv Mater Devices 2016;1(3):225–55.
[27] Armand M. Polymers with ionic conductivity. Adv Mater 1990;2(6–7):278–86.
[28] Bendrea A-D, Cianga L, Cianga I. Review paper: progress in the field of conducting poly-
mers for tissue engineering applications. J Biomater Appl 2011;26(1):3–84.