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Polymer electrolytes conductivity

Noda and Watanabe [42] reported a simple synthetic procedure for the free radical polymerization of vinyl monomers to give conducting polymer electrolyte films. Direct polymerization in the ionic liquid gives transparent, mechanically strong and highly conductive polymer electrolyte films. This was the first time that ambient-temperature ionic liquids had been used as a medium for free radical polymerization of vinyl monomers. The ionic liquids [EMIM][BF4] and [BP][Bp4] (BP is N-butylpyridinium) were used with equimolar amounts of suitable monomers, and polymerization was initiated by prolonged heating (12 hours at 80 °C) with benzoyl... [Pg.324]

Polymeric conducting systems were also prepared by in situ polymerization of vinyl monomers in ionic liquids [22], with a conductivity of 1 mS/cm. A conductive polymer electrolytes were also prepared by polymerization in liquid EMIm(HF)nF leading to a composite poly(2-hydroxyethyl methacrylate)-EMIm(HF)nF. Recently, polymer electrolytes were prepared in the form of thin foils, by incorporating ionic liquids in a polymer matrix [13-15], Conductivities of polymer-IL or polymer-IL-solvent systems are collected in Table 4. [Pg.102]

Zawodzinski, T. A., Davey, J., Valerio, J. and Gottesfeld, S. 1995. The water-con-tent dependence of electro-osmotic drag in proton-conducting polymer electrolytes. Electrochimica Acta 40 297-302. [Pg.174]

M. Eikerling, A. A. Kornyshev, and E. Spohr. Proton-conducting polymer electrolyte membranes Water and structure in charge. Advances in Polymer Science 215 (2008) 15-54. [Pg.427]

More recently, solid state batteries with lithium conducting polymer electrolytes have been extensively studied. The development has focused on secondary batteries for an electric vehicle, because lithium polymer batteries have a theoretical energy density that approaches 800 W h kg ... [Pg.305]

Polyglycidol containing cyanoethyl, (III), trimethylsilylacetyl, and cyanoben-zoyl termini were prepared by Sata [3] and used as a component in ion-conductive polymer electrolyte compositions. [Pg.50]

Polymer-electrolyte fuel cells (PEFC and DMFC) possess a exceptionally diverse range of applications, since they exhibit high thermodynamic efficiency, low emission levels, relative ease of implementation into existing infrastructures and variability in system size and layout. Their key components are a proton-conducting polymer-electrolyte membrane (PEM) and two composite electrodes backed up by electronically conducting porous transport layers and flow fields, as shown schematically in Fig. 1(a). [Pg.447]

Rikukawa, M. Sanui, K. Proton conducting polymer electrolyte membranes based on hydrocarbon polymers. Prog. Polym. Sci. 2000,25 (10), 1463-1502. [Pg.2528]

Many approaches have been developed for the production of ionic liquid-polymer composite membranes. For example, Doyle et al. [165] prepared RTILs/PFSA composite membranes by swelling the Nafion with ionic liquids. When 1-butyl, 3-methyl imidazolium trifluoromethane sulfonate was used as the ionic liquid, the ionic conductivity ofthe composite membrane exceeded 0.1 S cm at 180 °C. A comparison between the ionic liquid-swollen membrane and the liquid itself indicated substantial proton mobility in these composites. Fuller et al. [166] prepared ionic liquid-polymer gel electrolytes by blending hydrophilic RTILs into a poly(vinylidene fiuoridej-hexafluoropropylene copolymer [PVdF(HFP)] matrix. The gel electrolytes prepared with an ionic liquid PVdF(HFP) mass ratio of 2 1 exhibited ionic conductivities >10 Scm at room temperature, and >10 Scm at 100 °C. When Noda and Watanabe [167] investigated the in situ polymerization of vinyl monomers in the RTILs, they produced suitable vinyl monomers that provided transparent, mechanically strong and highly conductive polymer electrolyte films. As an example, a 2-hydroxyethyl methacrylate network polymer in which BPBF4 was dissolved exhibited an ionic conductivity of 10 S cm at 30 °C. [Pg.357]

Admittance spectra have been used to characterize conducting polymer-electrolyte interfaces for poly aniline [32], polypyrrole [33], and poly thiophene... [Pg.463]

K. Miyatake and M. Watanabe, Novel proton conducting polymer electrolyte membrane, Maku (Membrane), 2002, 27, 131-138. [Pg.86]

K. Bessho, T. Teramoto, T. Ishikawa, Proton conducting polymer electrolyte, Jpn. Pat., JP 9-87510 (unexamined application). [Pg.87]

Greszczuk et al. [252] employed the a.c. impedance measurements to study the ionic transport during PAn oxidation. Equivalent circuits of the conducting polymer-electrolyte interfaces are made of resistance R, capacitance C, and various distributed circuit elements. The latter consist of a constant phase element Q, a finite transmission line T, and a Warburg element W. The general expression for the admittance response of the CPE, Tcpr, is [253]... [Pg.454]

While Nafion , a perfluorinated polymer developed by DuPont, is the most commonly used proton conductive polymer electrolyte membrane it is an insufficient solution in a number of areas. It has high cationic transport (approximately 9.56 5/cm) [8] but also has high levels of methanol fuel crossover, slow anode kinetics and very high cost [12]. Fuel cell membrane performance can be estimated from the ratio of proton conductivity (a) to methanol permeability (P). The higher the value of a/P, the better the membrane performance would be [13]. Chitosan has been shown to have a much lower methanol permeability than Nafion [14], and as such, a great deal of attention focused on developing chitosan membranes with high levels of ionic conduction and low methanol permeability as delineated in Table 3.1. [Pg.65]

Sulfonated PPE can be treated with imidazole to get proton conducting polymer electrolytes. ... [Pg.162]

Gao, H., Lian, K., 2014. Proton-conducting polymer electrolytes and their applications in solid supercapacitors a review. RSC Adv. 4,33091-33113. [Pg.235]

K. Miyatake, Y. Chikashige, M. Watanabe, Novel sulfonated poly(arylene ether) A proton conductive polymer electrolyte designed for fuel cells. Macromolecules 2003, 36(26), 9691-9693. [Pg.613]


See other pages where Polymer electrolytes conductivity is mentioned: [Pg.512]    [Pg.197]    [Pg.205]    [Pg.111]    [Pg.232]    [Pg.247]    [Pg.62]    [Pg.274]    [Pg.133]    [Pg.448]    [Pg.162]    [Pg.72]    [Pg.72]    [Pg.272]    [Pg.67]    [Pg.624]    [Pg.622]    [Pg.213]    [Pg.292]    [Pg.297]    [Pg.17]    [Pg.19]    [Pg.21]    [Pg.23]    [Pg.25]   
See also in sourсe #XX -- [ Pg.503 ]




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Conductance, electrolytic

Conductance, electrolytical

Electrolytic conduction

Electrolytic conductivity

Polymer electrolyte conducting

Polymer electrolytes conducting polymers

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