Extraction of Carbon Based Biochar fromWasted Biomass for Energy Storage Application
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Date
2025
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Library Information Services, COMSATS University Islamabad, Lahore Campus
Abstract
The growing need for powerful eco-friendly energy storage has determined research into
better electrode materials for supercapacitors. Supercapacitors famous for their fast charge
and discharge cycles and high-power output, but their energy storage capacity remains
relatively low, when relying on Bismuth Sulfide (Bi₂S₃). To solve this, we use Biochar, a
carbon-rich material that can both store more electrons and also facilitates fast electron
transport. In this study, we created a binder-free electrode by growing Bi₂S₃ directly onto
Biochar made from Amal Tass pods biomass waste, using a fast microwave-assisted
process. First, we turned the Amal Tass pods into conductive biochar through drying,
grinding, and a simple hydrothermal step. Then mixed this biochar into water with
Bi(NO₃)₃·5H₂O and thiourea, and exposed the mixture to microwave energy and a uniform
Bi₂S₃–Biochar composite formed, no binders or extra additives needed. This composite
delivers a high energy density, making it a strong candidate to replace batteries. Raman
spectroscopy confirmed that Bi₂S₃ adopted its orthorhombic crystal structure within the
carbon matrix, and it also showed the characteristic D- and G-bands of biochar at 1391 and
1595 cm⁻¹. When we tested the composite in 2 M KOH, cyclic voltammetry revealed clear
redox peaks whose areas raised with scan rate, indicating strong pseudocapacitive
behavior. Electrochemical impedance spectroscopy showed low charge-transfer
resistance, which means ions and electrons move through the material with ease. Together,
these results demonstrate that our quick, green microwave method produces Bi₂S₃–Biochar
electrodes that combine high power with improved energy storage an encouraging step
toward the next generation of sustainable pseudocapacitors.
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Department of Physics, FA23, NATURAL SCIENCES::Physics, Carbon, Energy Storage, simple hydrothermal step, Dr. Muhammad Aamir Razaq