Structural, thermal and ion transport studies on nanocomposite polymer electrolyte-{(PEO + SiO2):NH4SCN} system

Ionics ◽  
2008 ◽  
Vol 14 (6) ◽  
pp. 515-523 ◽  
Author(s):  
Kamlesh Pandey ◽  
Mrigank Mauli Dwivedi ◽  
Mridula Tripathi ◽  
Markandey Singh ◽  
S. L. Agrawal
2012 ◽  
Vol 9 (1) ◽  
pp. 139-146 ◽  
Author(s):  
Mohan L Verma ◽  
Nirbhay K. Singh

Electrical and electrochemical properties of PEO based hot pressed nanocomposite polymer electrolyte (1-x)[70PEO:30AgI]:xAl2O3 where 0d≤x 10 wt% , have been studied. The conventional Solid Polymer Electrolyte composition (70PEO:30AgI) identified as highest conducting film at room temperature, has been used as 1st phase host matrix and nano-size particle of Al2O3 as 2nd phase dispersion. As a consequence of dispersal of Al2O3 in host, a conductivity enhancement of was achieved in film 93[70PEO:30AgI]:7Al2O3. These composition has been referred to as optimum composing composition. The ion transport behavior in polymer membrane have been discussed on the basis of ionic conductivity(σ), relaxation time (τ), and ionic transferred number(tion). The Impedance Spectroscopic study analysis at different temperature have been carried out to characterize the ion transport mechanism. The temperature dependence conductivity study has also been done to compute the activation energy(Ea) form logσ – 1/T plot.


Nanomaterials ◽  
2020 ◽  
Vol 10 (1) ◽  
pp. 157
Author(s):  
Xinjie Tan ◽  
Yongmin Wu ◽  
Weiping Tang ◽  
Shufeng Song ◽  
Jianyao Yao ◽  
...  

Composite polymer electrolytes provide an emerging solution for new battery development by replacing liquid electrolytes, which are commonly complexes of polyethylene oxide (PEO) with ceramic fillers. However, the agglomeration of fillers and weak interaction restrict their conductivities. By contrast with the prevailing methods of blending preformed ceramic fillers within the polymer matrix, here we proposed an in situ synthesis method of SiO2 nanoparticles in the PEO matrix. In this case, robust chemical interactions between SiO2 nanoparticles, lithium salt and PEO chains were induced by the in situ non-hydrolytic sol gel process. The in situ synthesized nanocomposite polymer electrolyte delivered an impressive ionic conductivity of ~1.1 × 10−4 S cm−1 at 30 °C, which is two orders of magnitude higher than that of the preformed synthesized composite polymer electrolyte. In addition, an extended electrochemical window of up to 5 V vs. Li/Li+ was achieved. The Li/nanocomposite polymer electrolyte/Li symmetric cell demonstrated a stable long-term cycling performance of over 700 h at 0.01–0.1 mA cm−2 without short circuiting. The all-solid-state battery consisting of the nanocomposite polymer electrolyte, Li metal and LiFePO4 provides a discharge capacity of 123.5 mAh g−1, a Coulombic efficiency above 99% and a good capacity retention of 70% after 100 cycles.


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