The Study of Electrical and Electrochemical Properties of Magnesium Ion Conducting CS: PVA Based Polymer Blend Electrolytes: Role of Lattice Energy of Magnesium Salts on EDLC Performance

Molecules. 2020 Oct 1;25(19):4503. doi: 10.3390/molecules25194503.

Abstract

Plasticized magnesium ion conducting polymer blend electrolytes based on chitosan (CS): polyvinyl alcohol (PVA) was synthesized with a casting technique. The source of ions is magnesium triflate Mg(CF3SO3)2, and glycerol was used as a plasticizer. The electrical and electrochemical characteristics were examined. The outcome from X-ray diffraction (XRD) examination illustrates that the electrolyte with highest conductivity exhibits the minimum degree of crystallinity. The study of the dielectric relaxation has shown that the peak appearance obeys the non-Debye type of relaxation process. An enhancement in conductivity of ions of the electrolyte system was achieved by insertion of glycerol. The total conductivity is essentially ascribed to ions instead of electrons. The maximum DC ionic conductivity was measured to be 1.016 × 10-5 S cm-1 when 42 wt.% of plasticizer was added. Potential stability of the highest conducting electrolyte was found to be 2.4 V. The cyclic voltammetry (CV) response shows the behavior of the capacitor is non-Faradaic where no redox peaks appear. The shape of the CV response and EDLC specific capacitance are influenced by the scan rate. The specific capacitance values were 7.41 F/g and 32.69 F/g at 100 mV/s and 10 mV/s, respectively. Finally, the electrolyte with maximum conductivity value is obtained and used as electrodes separator in the electrochemical double-layer capacitor (EDLC) applications. The role of lattice energy of magnesium salts in energy storage performance is discussed in detail.

Keywords: CV study; LSV and TNM; Salt lattice energy; dielectric properties; electrochemical double-layer capacitor; impedance; magnesium salt; polymer blends.

MeSH terms

  • Chitosan / chemistry*
  • Crystallization
  • Electric Capacitance*
  • Electric Impedance
  • Electrochemical Techniques*
  • Electrolytes / chemistry*
  • Glycerol / chemistry
  • Ions
  • Magnesium / chemistry*
  • Polyvinyl Alcohol / chemistry*
  • Salts / chemistry*
  • X-Ray Diffraction

Substances

  • Electrolytes
  • Ions
  • Salts
  • Polyvinyl Alcohol
  • Chitosan
  • Magnesium
  • Glycerol