Natural Solid-State Hydrogel Electrolytes Based on 3D Pure Cotton/Graphene for Supercapacitor Application

Author:

Mohammed Nujud Badawi12ORCID,Batoo Khalid Mujasam3,Hussain Sajjad45ORCID,Subramaniam Ramesh1,Kasi Ramesh1ORCID,Bhuyan Mrutunjaya16ORCID,Imran Ahamad3,Muthuramamoorthy Muthumareeswaran3

Affiliation:

1. Centre for Ionics University of Malaya, Department of Physics, Faculty of Science, Universiti Malaya, Kuala Lumpur 50603, Malaysia

2. Department of Physics, Faculty of Science, University of Hafr Al-Batin College of Science, Hafer Al-Batin 39921, Saudi Arabia

3. King Abdullah Institute for Nanotechnology, King Saud University, P.O. Box 2455, Riyadh 11451, Saudi Arabia

4. Graphene Research Institute, Sejong University, Seoul 05006, Republic of Korea

5. Institute of Nano and Advanced Materials Engineering, Sejong University, Seoul 05006, Republic of Korea

6. Center of Theoretical and Computational Physics, Department of Physics, Universiti Malaya, Kuala Lumpur 50603, Malaysia

Abstract

A conductive cotton hydrogel with graphene and ions can come into contact with electrodes in solid electrolytes at the molecular level, leading to a more efficient electrochemical process in supercapacitors. The inherently soft nature of cotton mixed with hydrogel provides superior flexibility of the electrolyte, which benefits the devices in gaining high flexibility. Herein, we report on the current progress in solid-state hydrogel electrolytes based on 3D pure cotton/graphene and present an overview of the future direction of research. The ionic conductivity of a complex hydrogel significantly increased by up to 13.9 × 10−3 S/cm at 25 °C, due to the presence of graphene, which increases ionic conductivity by providing a smooth pathway for the transport of charge carriers and the polymer. Furthermore, the highest specific capacitance of 327 F/g at 3 mV/s was achieved with cyclic voltammetry measurement and a galvanostatic charge–discharge measurement showed a peak value of 385.4 F/g at 100 mA/g current density. Furthermore, an electrochemical analysis demonstrated that a composite cotton/graphene-based hydrogel electrolyte is electrically stable and could be used for the design of next-generation supercapacitors.

Funder

Research and Innovation “Ministry of Education” in Saudi Arabia

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Mechanical Engineering,Control and Systems Engineering

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