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Advanced polymer-based materials and mesoscale models to enhance the performance of multifunctional supercapacitors

Journal

JOURNAL OF ENERGY STORAGE
Volume 58, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.est.2022.106337

Keywords

Polymer nanocomposite; Electrode morphology; Continuum models; Hybrid flexible supercapacitors

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The rapidly growing need for a stable electric supply has led to energy crises caused by inconsistent renewable and inadequate non-renewable energy sources. This emphasizes the importance of reliable hybrid energy storage systems that combine contrasting electrical characteristics and provide sustained electrochemical performance. Supercapacitors, particularly those utilizing polymer nanocomposites, show great potential in surpassing traditional energy storage systems by offering significantly higher power densities and longer life cycles. This review extensively discusses the potential of complex polymer nanocomposites as electrodes and electrolytes to achieve high energy density supercapacitors, as well as the use of continuum level approaches to understand the influence of electrode and electrolyte morphologies on supercapacitor performance.
Rapidly growing need for steady electric supply has led to energy crises owing to inconsistent renewable and inadequate non-renewable energy sources, underscoring the need for reliable hybrid energy storage systems which synergize contrasting electrical characteristics and execute sustained electrochemical performance. Supercapacitors transcend the performance of traditional energy storage systems, imparting significantly higher power densities and longer life cycles with its hybridization gaining paramount attention attributed to the utilization of polymer nanocomposites. These advanced nanocomposites deliver exceptional ionic conductivity, excellent mechanical stability with significant capacitance, high cyclic stability under deformation offering energy density of at least 50 Wh/kg and power density of 3 kW/kg. In this review, potential of complex polymer nanocomposites as electrodes and electrolytes to achieve high energy density supercapacitors have been extensively elaborated. Subsequently, examining trade-off between model complexity and computational cost, continuum level approaches are emphasized to comprehend the influence of electrode and electrolyte morphologies coupled with validation against experimental studies. The overall objective is to briefly propose techniques to design and model multifunctional supercapacitors to enhance their performance.

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