Synthesis and Characterization of Magnesium- Based Metal Organic Framework (MOFs) for Energy Storage Application
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Date
2025
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Library Information Services, COMSATS University Islamabad, Lahore Campus
Abstract
This research presents the sustainable synthesis of magnesium-based metal-organic
framework (Mg-MOFs) composites integrated with lignocelluloses (LC) fibers derived
from corn husk via a hydrothermal method route using Mg(NO₃)₂·6H₂O and H₃BTC as
precursors. Magnesium was utilized because it is abundant, environmentally friendly,
less reactive, cost-efficient, and an electrochemically compatible material. The
resulting Mg-MOFs/LC composite harnesses the synergistic benefits of both
components—magnesium offers lightweight characteristics, moderate electrical
conductivity, and structural integrity, while lignocelluloses fibers provide
biodegradability, flexibility, and environmental safety. Structural and optical
characterizations confirmed successful composite formation. UV-Visible spectroscopy
revealed enhanced light absorption with notable π→π* transitions and a red-shifted
absorption edge (2.73 eV), showing strong interfacial electronic coupling. Raman
spectroscopy found key vibrational modes, including Mg–O bonds and aromatic linker
structures, alongside preserved organic functionalities. Electrochemical assessments
showed that cyclic voltammetry shown pronounced redox activity with a high area
under the curve. Although the specific capacitance of Mg-MOFs is 122 F/g but a
reduction in specific capacitance was seen with LC incorporation, galvanostatic charge-
discharge measurements proved extended discharge times and strong redox behavior,
highlighting effective charge storage and diffusion. The EIS of composite show the less
resistance as compared to Mg-MOFs. With its eco-friendly fabrication, mechanical
resilience, and promising energy storage performance, the Mg-MOFs/LC composite
appears as a practical material for next-generation flexible and biodegradable
supercapacitor applications.
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Department of Physic, FA23, Physics, Magnesium, Metal Organic, Energy Storage, Dr. Muhammad Aamir Razaq