The Study of Plasticized Solid Polymer Blend Electrolytes Based on Natural Polymers and Their Application for Energy Storage EDLC Devices.
Elham M A DannounShujahadeen B AzizMohamad A BrzaMuaffaq M NofalAhmad S F M AsnawiYuhanees M YusofShakhawan Al-ZanganaMuhamad H HamsanMohd F Z KadirHaw Jiunn WooPublished in: Polymers (2020)
In this work, plasticized magnesium ion-conducting polymer blend electrolytes based on chitosan:methylcellulose (CS:MC) were prepared using a solution cast technique. Magnesium acetate [Mg(CH3COO)2] was used as a source of the ions. Nickel metal-complex [Ni(II)-complex)] was employed to expand the amorphous phase. For the ions dissociation enhancement, glycerol plasticizer was also engaged. Incorporating 42 wt% of the glycerol into the electrolyte system has been shown to improve the conductivity to 1.02 × 10-4 S cm-1. X-ray diffraction (XRD) analysis showed that the electrolyte with the highest conductivity has a minimum crystallinity degree. The ionic transference number was estimated to be more than the electronic transference number. It is concluded that in CS:MC:Mg(CH3COO)2:Ni(II)-complex:glycerol, ions are the primary charge carriers. Results from linear sweep voltammetry (LSV) showed electrochemical stability to be 2.48 V. An electric double-layer capacitor (EDLC) based on activated carbon electrode and a prepared solid polymer electrolyte was constructed. The EDLC cell was then analyzed by cyclic voltammetry (CV) and galvanostatic charge-discharge methods. The CV test disclosed rectangular shapes with slight distortion, and there was no appearance of any redox currents on both anodic and cathodic parts, signifying a typical behavior of EDLC. The EDLC cell indicated a good cyclability of about (95%) for throughout of 200 cycles with a specific capacitance of 47.4 F/g.
Keyphrases
- ionic liquid
- solid state
- room temperature
- ion batteries
- quantum dots
- single cell
- cell therapy
- stem cells
- high resolution
- gold nanoparticles
- metal organic framework
- wastewater treatment
- aqueous solution
- computed tomography
- water soluble
- reduced graphene oxide
- electron transfer
- label free
- wound healing
- bone marrow
- molecularly imprinted
- oxide nanoparticles