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1.
PMMA based protonic polymer gel electrolytes 总被引:1,自引:0,他引:1
The paper reports the synthesis of protonic polymer gel electrolytes containing different hydroxy benzoic acids (ortho-, meta-
and para-) and aliphatic dicarboxylic acids. Gel electrolytes were prepared by adding polymethylmethacrylate (PMMA) in different
weight ratios to the 1M solution of above acids in a ternary solvent mixture of propylene carbonate (PC), ethylene carbonate
(EC) and dimethylformamide (DMF) in equal volume ratio. The conductivity of these gel electrolytes has been found to depend
upon the amount of PMMA added to the system. A “Breathing Polymeric Chain Model” has been proposed to explain the variation
of conductivity with PMMA concentration in these gel electrolytes. 相似文献
2.
《Solid State Ionics》2006,177(26-32):2679-2682
The polymer electrolytes comprising blend of poly(vinyl acetate) (PVAc) and poly(methylmethacrylate) (PMMA) as a host polymer and LiClO4 as a dopant are prepared by solution casting technique. The amorphous nature of the polymer–salt complex has been confirmed by XRD analysis. The DSC thermograms show two Tg's for PVAc–PMMA blend. A decrease in Tg with the LiClO4 content reveals the increase of segmental motion. Conductance spectra results are found to obey the Jonscher's power law and the maximum dc conductivity value is found to be 1.76 × 10− 3 S cm− 1 at 303 K for the blend polymer complex with 20 wt.% LiClO4, which is suitable for the Li rechargeable batteries. The conductivity–temperature plots are found to follow an Arrhenius nature. The dc conductivity is found to increase with increase of salt concentration in the blend polymer complexes. 相似文献
3.
The preparation and characterization of composite polymer electrolytes of PMMA-LiClO4-DMP for different concentrations of CeO2 have been investigated. FTIR studies indicate complex formation between the polymer, salt and plasticizer. The electrical conductivity values measured by a.c. impedance spectroscopy are found to depend upon the CeO2 concentration. The temperature dependence of the conductivity of the polymer films seems to obey the VTF relation. The conductivity values are presented and the results are discussed. 相似文献
4.
Thin film of poly (vinylchloride) and poly (methylmethacrylate) blend polymer electrolytes plasticized with a combination
of DBP and Li2SO4 salts have been prepared by solution casting technique. The prepared films were subjected to a.c. impedance measurements
as a function of temperature ranging from 304–373 K. The maximum conductivity at 304 K was found to be 1.24 × 10−8 S·cm−1 for PVC-PMMA-Li2SO4-DBP (7.5-17.5-5-70 mole-%). Temperature dependence studies on the ionic conductivity in the PVC-PMMA-Li2SO4-DBP system suggest that the ion conduction follows the Williams-Landel-Ferry (WLF) mechanism, which is further confirmed
by Vogel-Tamman-Fulcher (VTF) plots. XRD, FTIR, SEM and thermal studies revealed complex formation in. 相似文献
5.
Polymer electrolyte films prepared from poly (methyl methacrylate) and LiAsF6 with different concentrations of plasticizer (DBP) are described. The formation of polymer-salt complexes has been confirmed
by XRD and FTIR spectral studies. The temperature dependence of the conductivity of the polymer films obeys the VTF relation.
Values of conductivities of the polymer complexes are presented and discussed. 相似文献
6.
Thermogravimetric Analysis (TGA) and Differential Scanning Calorimetry (DSC) have been employed to study the thermal stability
of the chitosan acetate-based polymer electrolyte films. The glass transition temperature, Tg measurements confirm the conductivity enhancement effect by adding the plasticizer and salt in the chitosan acetate films
Paper presented at the International Conference on Functional Materials and Devices 2005, Kuala Lumpur, Malaysia, June 6 –
8, 2005. 相似文献
7.
S. Kalyanasundaram A. Gopalan N. Muniyandi N. G. Renganathan Y. Saito H. Kataoka A. Manuel Stephan R. Nimma Elizabeth 《Ionics》2001,7(1-2):44-52
The lithium salt (x) (x=LiAsF6, LiPF6) was complexed with a blend of poly(vinyl chloride) (PVC) / poly(methyl methacrylate)(PMMA) and plasticized with a combination
of ethylene carbonate(EC) and propylene carbonate(PC). The electrolyte films were prepared using doctor blade method and subjected
to ionic conductivity measurements at nine different temperatures viz.,-30, -15, 0, 15, 30, 40, 50, 60 and 70 °C. The films
were also subjected to TG - DTA and FT-IR analysis. The effect of salt on ionic conductivity is discussed. A 75:25 PMMA/PVC
blend at 60 % plasticizer content has been found to possess optimal properties in terms of ionic conductivity, thermal and
electrochemical stability. 相似文献
8.
Blend based polymer electrolytes composed of poly (methyl methacrylate) (PMMA), poly(vinylalcohol) (PVA) and LiClO4 are prepared using solvent casting technique. The polymer films are characterized by XRD and FTIR studies to determine the
molecular environment for the conducting ions. These polymer films have been investigated in terms of ionic conductivity using
the results of impedance studies. The influence of the blend composition on the electrochemical behaviour is also discussed.
The highest room temperature conductivity obtained for the film consisting of PMMA, PVA, LiClO4 and DMP is 0.06×10−3 S/cm at 303 K. The PMMA-PVA blend based polymer electrolytes look very desirable and promising for lithium battery applications. 相似文献
9.
Solid polymer electrolyte films based on poly (ethylene oxide) PEO complexed with NaClO3 have been prepared by a solution-cast technique. The solvation of Na+ ion with PEO is confirmed by XRD and IR studies. Measurements of the a.c. conductivity in the temperature range 308 – 378
K and the transference numbers have been carried out to investigate the charge transport in this polymer electrolyte system.
Transport number data show that the charge transport in this polymer electrolyte system is predominantly due to ions. The
highest conductivity (2.12.10−4 S/cm) has been observed for the 70:30 composition. Using the polymer electrolyte solid state electrochemical cells have been
fabricated. The various cell parameters are evaluated and reported. 相似文献
10.
Hyperbranched star polymer HBPS-(PPEGMA) x was synthesized by atom transfer radical polymerization (ATRP) using hyperbranched polystyrene (HBPS) as macroinitiator and poly(ethylene glycol) methyl ether methacrylate (PEGMA) as monomer. The structure of the prepared hyperbranched star polymer was characterized by 1H NMR, ATR-FTIR, and GPC. Polymer electrolytes based on HBPS-(PPEGMA) x , lithium salt, and/or nano-TiO2 were prepared. The influences of lithium salt concentration and type, nano-TiO2 content, and size on ionic conductivity of the obtained polymer electrolytes were investigated. The results showed that the low crystallinity of the prepared polymer electrolyte was caused by the interaction between lithium salt and polymer. The addition of TiO2 into HBPS-(PPEGMA) x /LiTFSI improved the ionic conductivity at low temperature. The prepared composite polymer electrolyte showed the highest ionic conductivity of 9?×?10?5 S cm?1 at 30 °C when the content of TiO2 was 15 wt% and the size of TiO2 was 20 nm. 相似文献
11.
Grafted natural rubber-based polymer electrolytes: ATR-FTIR and conductivity studies 总被引:2,自引:0,他引:2
Attenuated total reflectance–Fourier transformed infrared spectroscopy measurement is employed to study the interactions between
the components of 30% methyl-grafted natural rubber (MG30), lithium trifluromethanesulfonate (LiCF3SO3 or LiTF), and propylene carbonate (PC). Vibrational spectra data of LiTF reveals that the νs(SO3) at 1,045 cm−1, δs(CF3) at 777 cm−1, and C=O stretching mode at 1,728 cm−1 for MG30 have shifted to lower wave numbers in MG30–LiTF complexes indicating that complexation has occurred between MG30
and LiTF. The solvation of lithium ion is manifested in Li+ ← O=C interaction as shown by the downshifting and upshifting of C=O mode at 1,788 to 1,775 cm−1 and νas(SO3) at 1,250 to 1258 cm−1, respectively, in LiTF–PC electrolytes. There is no experimental evidence of the interaction between MG30 and PC. Competition
between MG30 and PC on associating with lithium ion is studied, and the studies show that the interaction between MG30–LiTF
is stronger than that of the PC–LiTF in plasticized polymer–salt complexes. The effect of PC on the ionic conductivity of
the MG30–LiTF system is explained in terms of the polymer, plasticizer, and salt interactions. The temperature dependence
of conductivity of the polymer films obeys the Vogel–Tamman–Fulcher relation. Values of conductivity and activation energy
of the MG30-based polymer electrolyte systems are presented and discussed. 相似文献
12.
《Solid State Ionics》1999,116(1-2):63-71
Linear polyphosphate random copolymers (LPC) composed of phosphate as a linking agent with poly(ethylene glycol) (PEG) and/or poly(tetramethylene glycol) (PTMG) were synthesized to increase local segmental motion for improved ion transport. Ionic conductivity and thermal behavior of LPC series–LiCF3SO3 complexes were investigated with various compositions, salt concentrations and temperatures. The PEG(70)/PTMG(30)/LiCF3SO3 electrolyte exhibited ionic conductivity of 8.04×10−5 S/cm at 25°C. Salt concentration with the highest ionic conductivity was considerably dependent on EO/TMO compositions in LPC series–salt systems. Relationship between solvating ability and chain flexibility with various compositions and salt concentrations was investigated through theoretical aspects of the Adam–Gibbs configurational entropy model. Temperature dependence on the ionic conductivity in LPC6 series–salt systems suggested the ion conduction follows the Williams–Landel–Ferry (WLF) mechanism, which is confirmed by Vogel–Tamman–Fulcher (VTF) plots. The ionic conductivity was affected by segmental motion of the polymer matrix. VTF parameters and apparent activation energy were evaluated by a non-linear least square minimization method. These results suggested that the solvating ability of the host polymer might be a dominant factor to improve the ionic conductivity rather than chain mobility. 相似文献
13.
Batteries using ionically conducting polymer membranes as electrolytes are very attractive, since the concept of power sources
capable of combining a high energy content with plasticity is very appealing for the consumer electronics market and in electric
vehicle applications. Blend based polymer electrolytes composed of poly (methylmethacrylate) (PMMA), Poly Vinylidene fluoride
(PVdF), Lithium salt (LiX) (X=ClO4, BF4 and CF3SO3) and Dimethyl Phthalate (DMP) are prepared using solvent casting technique. The films have been characterized using XRD,
FTIR, Thermal and SEM studies; the effect of complexing salt and temperature on ionic conductivity is also discussed. The
maximum conductivity value obtained for the solid polymer electrolyte film at 303 K is 4.2 × 10−3 S/cm. 相似文献
14.
Chitosan/PEO-LiTFSI films have been prepared by the solution cast technique. The highest conductivity at room temperature
was 1.4 × 10−6 Scm−1 and the activation energy was 0.47 eV for chitosan/PEO blends containing 30 wt.% LiTFSI salts. The conductivity of the samples
is dependent on the number of mobile ions.
Paper presented at the International Conference on Functional Materials and Devices 2005, Kuala Lumpur, Malaysia, June 6 –
8, 2005. 相似文献
15.
The polymer electrolytes composed of a blend of poly (vinyl acetate) (PVAc) and poly (methylmethacrylate) (PMMA) as a host
polymer and LiClO4 as a salt are prepared by a solution casting technique. The formation of blend polymer- salt complex has been confirmed by
FT-IR spectral studies. The conductivity- temperature plots are found to follow an Arrhenius nature. Arrhenius plot shows
the decrease in activation energy with the increase in salt concentration. The dielectric behaviour of the sample is analysed
using dielectric permittivity (ε′), dielectric loss (ε″) and electric modulus (M″) of the samples. The impedance cole- cole
plot shows the high frequency semi- circle is due to the bulk effect of the material and the depression in the semicircle
shows the non-Debye nature of the material. The bulk conductivity is found to vary between 2.5×10−5 Scm−1 to 1.7×10−3 Scm−1 with the increase of salt concentration of blend polymer samples. The migration energy derived from the dissipation factor
is almost equal to the activation energy calculated from conductivity. The modulus spectrum of the samples shows the non-Debye
behaviour of the polymer electrolyte films. The low frequency dispersion of the dielectric constant implies the space charge
effects arising from the electrodes.
Paper presented at the 2nd International Conference on Ionic Devices, Anna University, Chennai, India, Nov. 28–30, 2003. 相似文献
16.
Polymer electrolyte films of (PVA+15 wt% LiClO4)+x wt% Ionic liquid (IL) 1-ethyl-3-methylimidazolium ethylsulfate [EMIM][EtSO4] (x=0, 5, 10, 15) were prepared by solution cast technique. These films were characterized using TGA, DSC, XRD and ac impedance spectroscopic techniques. XRD result shows that amorphosity increases as the amount of the IL in PVA+salt (LiClO4) is increased. DSC results confirm the same (except (PVA+15 wt% LiClO4)+10 wt% IL). The dielectric and conductivity measurements were carried out on these films as a function of frequency and temperature. The addition of IL significantly improved the ionic conductivity of polymer electrolytes. Relaxation frequency vs. temperature plot for (PVA+15 wt% LiClO4)+x wt% IL were found to follow an Arrhenius nature. The dielectric behavior was analyzed using real and imaginary parts of dielectric constant, dielectric loss tangent (tan δ) and electric modulus (M′ and M″). 相似文献
17.
以聚氧化乙烯(PEO)为基质,成功制备出纳米ZnO掺杂的(PEO)8-ZnO-LiClO4离子导电聚合物电解质,并利用多种实验技术,包括扫描电子显微镜、X射线衍射(XRD)、傅里叶变换红外光谱和正电子湮没寿命谱(PALS),系统地研究了纳米ZnO与基质间相互作用及其对聚合物链段运动、纳米尺度自由体积、离子输运和复合电解质电导率的影响.实验结果发现,纳米ZnO的掺杂使聚合物电解质的离子电导率得到了大幅度提高,当ZnO与PEO质量比为6%时达到最大,(PEO)8-ZnO-LiClO4的电导率为1.82×10-4 S ·cm-1,比(PEO)8-LiClO4的电导率(6.58×10-5 S ·cm-1)提高了大约一个数量级.XRD结果显示,纳米ZnO的加入降低了PEO的结晶性,增加了锂离子传输的非晶相,从而提高了电导率.离散PALS测量结果表明,随着纳米ZnO的加入,复合电解质的自由体积、浓度和相对自由体积分数fr均增加.连续PALS分析揭示了自由体积的分布由一个峰劈裂成两个峰,表明纳米ZnO的掺杂对聚合物的微结构有很大影响.基于实验测量的fr和离子电导率,研究了离子导电机理.研究发现, fr与电导率之间存在一个直接关系,即fr越大,越有利于锂离子的传输,导致电导率越大.这个结果支持聚合物电解质导电的自由体积理论.
关键词:
正电子湮没寿命谱
聚合物纳米复合电解质
离子电导率
自由体积 相似文献
18.
Chitosan acetate–adipic acid film polymer electrolytes have been prepared by the solution cast technique. The highest conductivity
is 1.4 × 10−9 S cm−1 for 35 wt.% of adipic acid at room temperature. The sample with highest conductivity has the lowest activation energy. Calculations
using the Rice and Roth model provide number of mobile ions, η. The conductivity is dependent on the diffusion coefficient and mobility. 相似文献
19.
《Solid State Ionics》2009,180(40):1626-1632
Poly(propylenimine), PPI, was methylated using Eschweiler-Clark conditions to produce poly(N-methylpropylenimine), PMPI. Differences may be seen in the IR spectra of the PMPI (–CH2CH2CH2NCH3–) and its homolog poly(N-methylethylenimine), PMEI, (–CH2CH2NCH3–), especially in the conformation region (~ 1100 to ~ 1400 cm− 1). The addition of lithium trifluoromethanesulfonate, (LiCF3SO3), sharpens the distinctions between these systems. Comparison of IR spectra of polymer:LiCF3SO3 complexes at compositions ranging from pure polymer to 5:1 N:Li+ (molar ratio) suggests significant differences in the nature of polymer salt interactions and the complex structure present in each system. These are further evidenced by differential scanning calorimetry data in which PMPI displays less variation in glass transition temperature, Tg, with the addition of salt than seen in PMEI. These observations may be interpreted in terms of local structural changes originating in cation–anion and cation–polymer interactions, particularly at mid to high salt concentrations. 相似文献
20.
Sodium-ion-conducting poly(ethylene oxide) (PEO)-based solid polymer electrolyte films mixed with salt sodium thiocyanate (NaSCN) have been prepared by solution-cast method. Films were characterized in detail using optical microscopy, differential scanning calorimetry, and impedance spectroscopy. The drop in ionic conductivity with increasing salt concentration is supported by a decrease in number of charge carriers. Dielectric constant is supported by decreases in numbers of charge carriers and increase in mobility. The maximum ionic conductivity and number of charge carriers for material are found 9.86 × 10?6 S/m and 1.21 × 1020, respectively, for weight % ratio (95:05) of PEO:NaSCN polymer salt complex. The maximum mobility of material is found 2.58 × 10?6 m2/Vs for weight % ratio (80:20) of PEO:NaSCN polymer salt complex. 相似文献