Literature DB >> 33379413

Optimization of the Electrochemical Performance of a Composite Polymer Electrolyte Based on PVA-K2CO3-SiO2 Composite.

Bashir Abubakar Abdulkadir1, John Ojur Dennis1, Yas Al-Hadeethi2, Muhammad Fadhlullah Bin Abd Shukur1, Elmoiz Marghni Mkawi2, Nuha Al-Harbi2, Khalid Hassan Ibnaouf3, Osamah Aldaghri3, Fahad Usman1, Abdullahi Abbas Adam1.   

Abstract

Composite polymer electrolyte (CPE) based on polyvinyl alcohol (PVA) polymer, potassium carbonate (K2CO3) salt, and silica (SiO2) filler was investigated and optimized in this study for improved ionic conductivity and potential window for use in electrochemical devices. Various quantities of SiO2 in wt.% were incorporated into PVA-K2CO3 complex to prepare the CPEs. To study the effect of SiO2 on PVA-K2CO3 composites, the developed electrolytes were characterized for their chemical structure (FTIR), morphology (FESEM), thermal stabilities (TGA), glass transition temperature (differential scanning calorimetry (DSC)), ionic conductivity using electrochemical impedance spectroscopy (EIS), and potential window using linear sweep voltammetry (LSV). Physicochemical characterization results based on thermal and structural analysis indicated that the addition of SiO2 enhanced the amorphous region of the PVA-K2CO3 composites which enhanced the dissociation of the K2CO3 salt into K+ and CO32- and thus resulting in an increase of the ionic conduction of the electrolyte. An optimum ionic conductivity of 3.25 × 10-4 and 7.86 × 10-3 mScm-1 at ambient temperature and at 373.15 K, respectively, at a potential window of 3.35 V was observed at a composition of 15 wt.% SiO2. From FESEM micrographs, the white granules and aggregate seen on the surface of the samples confirm that SiO2 particles have been successfully dispersed into the PVA-K2CO3 matrix. The observed ionic conductivity increased linearly with increase in temperature confirming the electrolyte as temperature-dependent. Based on the observed performance, it can be concluded that the CPEs based on PVA-K2CO3-SiO2 composites could serve as promising candidate for portable and flexible next generation energy storage devices.

Entities:  

Keywords:  K2CO3; PVA; SiO2; composite polymer electrolyte; plasticizer

Year:  2020        PMID: 33379413     DOI: 10.3390/polym13010092

Source DB:  PubMed          Journal:  Polymers (Basel)        ISSN: 2073-4360            Impact factor:   4.329


  3 in total

1.  Innovative Methylcellulose-Polyvinyl Pyrrolidone-Based Solid Polymer Electrolytes Impregnated with Potassium Salt: Ion Conduction and Thermal Properties.

Authors:  Abdullahi Abbas Adam; Mohammed Khalil Mohammed Ali; John Ojur Dennis; Hassan Soleimani; Muhammad Fadhlullah Bin Abd Shukur; Khalid Hassan Ibnaouf; Osamah A Aldaghri; Moez A Ibrahem; Naglaa F M Abdel All; Abubakar Bashir Abdulkadir
Journal:  Polymers (Basel)       Date:  2022-07-28       Impact factor: 4.967

2.  Substantial Proton Ion Conduction in Methylcellulose/Pectin/Ammonium Chloride Based Solid Nanocomposite Polymer Electrolytes: Effect of ZnO Nanofiller.

Authors:  John Ojur Dennis; Abdullahi Abbas Adam; M K M Ali; Hassan Soleimani; Muhammad Fadhlullah Bin Abd Shukur; K H Ibnaouf; O Aldaghri; M H Eisa; M A Ibrahem; Abubakar Bashir Abdulkadir; Vipin Cyriac
Journal:  Membranes (Basel)       Date:  2022-07-13

3.  Effect of ZnO Nanofiller on Structural and Electrochemical Performance Improvement of Solid Polymer Electrolytes Based on Polyvinyl Alcohol-Cellulose Acetate-Potassium Carbonate Composites.

Authors:  John Ojur Dennis; Mohammed Khalil Mohammed Ali; Khalid Hassan Ibnaouf; Osama Aldaghri; Naglaa F M Abdel All; Abdullahi Abbas Adam; Fahad Usman; Yarima Mudassir Hassan; Bashir Abubakar Abdulkadir
Journal:  Molecules       Date:  2022-08-28       Impact factor: 4.927

  3 in total

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