Abstract

In the present work, phthaloyl chitosan (PhCh)-based gel polymer electrolytes (GPEs) were prepared using dimethylformamide (DMF) as a solvent, ethyl carbonate (EC) as a co-solvent, and a set of five quaternaries of potassium iodide (KI) as a doping salt, which is a mixed composition of iodine (I2). The prepared GPEs were applied to dye-sensitized solar cells (DSSC) to observe the effectiveness of the electrolyte, using mesoporous TiO2, which was sensitized with N3 dye as the sensitizer. The incorporation of the potassium iodide-based redox couple in a polymer electrolyte is fabricated for dye-sensitized solar cells (DSSCs). The number of compositions was based on the chemical equation, which is 1:1 for KI:I2. The electrical performance of prepared GPE systems have been assessed using electrical impedance spectroscopy (EIS), and dielectric permittivity. The improvement in the ionic conductivity of PhCh-based GPE was observed with the rise of salt concentration, and the maximum ionic conductivity (4.94 × 10−2 S cm−1) was achieved for the 0.0012 mol of KI:I2. The study of dielectric permittivity displays that ions with a high dielectric constant are associated with a high concentration of added ions. Furthermore, the gel polymer electrolyte samples were applied to DSSCs to detect the conversion effectiveness of the electrolytes. For electrolytes containing various content of KI:I2 the highest conversion efficiency (η%) of DSSC obtained was 3.57% with a short circuit current density (Jsc) of 20.33 mA cm−2, open-circuit voltage (Voc) of 0.37 V, fill factor (FF) of 0.47, as well as a conductivity of 2.08 × 10−2 S cm−1.

Highlights

  • In recent decades a massive increase in energy demanded and concerns with using fossil energy resources, with respect to their environmental effect and deficiency of storage, have become a global energy problem

  • The electrical impedance spectroscopy (EIS) was performed in this study to characterize the impedance plots for the prepared gel polymer electrolyte gel polymer electrolytes (GPEs) systems

  • phthaloyl chitosan (PhCh) as a host polymer was used to prepare a series of gel polymer electrolytes utilizing DMF as a solvent, ethyl carbonate (EC) as a plasticizer, and KI salt dopant, which optimized to regenerative photoelectrochemical cells

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Summary

Introduction

In recent decades a massive increase in energy demanded and concerns with using fossil energy resources, with respect to their environmental effect and deficiency of storage, have become a global energy problem. Cellulose is the supreme abundant natural polymer beyond chitosan, and it is obtained from N-deacetylated chitin It constitutes a host polymer for electrolytes since it can dissolve ionic salts, and is able to form a high conductivity polymeric system due to multifunctional properties and the protonated amino group in its chain structure. The presence of a hydrophobic Ph group in chitosan leads to destroying the hydrogen bond that is formed from the interaction between the solvents and its amino and hydroxyl groups, and it becomes a proper host polymer in the PEs. excluding enhancing the solubility of the polymer, numerous styles have been explored and reported by previous researchers, with the improvement of conductivity in the GPEs based on PhCh, such as PhCh:EC:PC:TPAI:LiI [3], PhCh:PEO:NH4 I:BMII [21], and PhCh:EC:DMF:TPAI [22]. GPEs have been characterized utilizing electrical impedance spectroscopy, dielectric properties, and the current density-voltage curve

Study of Impedance Spectroscopy
Conductivity versus molarity of KI
Dielectric Studies
J-V Characteristic of DSSC
Modification of Chitosan to PhCh
Characterization of GPEs
Conclusions
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