4.5 Article

Influence of CeO2 as dispersoid in blend poly(styrene-co-methylmethacrylate) as electrolyte for lithium-ion battery

Journal

POLYMER INTERNATIONAL
Volume 71, Issue 3, Pages 310-316

Publisher

WILEY
DOI: 10.1002/pi.6331

Keywords

poly(styrene-co-methylmethacrylate); solution casting method; composite polymer electrolyte; blend polymer system

Funding

  1. UGCNew Delhi under UGC-MRP [41-839/2012]
  2. DST-SERB, New Delhi [EMR/2016/006302]
  3. Department of Science and Technology (DST), New Delhi, Government of India
  4. Ministry of Human Resource Development RUSA-Phase 2.0 grant, Depertment of Education, Government of India [F-24-51/2014 U]

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The study focused on improving the ionic conductivity of P(S-MMA) composite polymer electrolytes by adding CeO2 nanofillers. The prepared electrolyte exhibited excellent performance in a 2032 type coin cell.
Poly(styrene-co-methylmethacrylate) P(S-MMA) composite polymer electrolytes are having massive consideration for solid-state electrochemical devices. There are numerous tactics implement to improve the ambient temperature ionic conductivity such as the addition of plasticizers, the inclusion of nanosize ceramic fillers and blending with the host polymer, which were carried out in this work. The effect of CeO2 on the P(S-MMA)-poly(vinylidene fluoride) (25:75 of 27 wt%)-LiClO4 (8 wt%)-ethylene carbonate:propylene carbonate (1:1 of 65 wt%) system prepared via a conventional solution casting technique. The as-prepared polymer membranes were characterized using XRD, Fourier transform infrared spectroscopy, thermogravimetry and differential thermal analysis, SEM and AC impedance analyses. The composite polymer blend gel electrolyte system exhibits high ionic conductivity (2.51 x 10(-2) S cm(-1)) with 6 wt% CeO2 nanofiller at ambient temperature. The conductivity enhancement is due to the presence of a rise in the amorphous content; it is in well concurrence with the XRD results. The optimum electrolyte was used to design the LiFePO4/composite gel polymer electrolyte/Li cell couple in a 2032 type coin cell. It possesses a discharge capacity of 151 mA h g(-1) at 0.1 C. (c) 2021 Society of Industrial Chemistry.

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