Application of murexide as a capping agent for fabrication of magnetite anodes for supercapacitors: experimental and first-principle studies
Coulton Boucher, Igor Zhitomirsky, and Oleg Rubel

TL;DR
This study explores murexide as a surface modifier for Fe₃O₄ nanoparticles, enhancing supercapacitor electrode performance through experimental improvements and first-principles insights into bonding mechanisms.
Contribution
It introduces murexide as an effective capping agent for Fe₃O₄, combining experimental performance enhancement with theoretical analysis of surface interactions.
Findings
Capacitance of 4.2 F cm⁻² achieved with murexide
Significant decrease in impedance indicating better charge transfer
Strong adsorption enthalpy of -4.5 eV and novel bonding configuration
Abstract
In this study, we investigate the effectiveness of murexide for surface modification of FeO nanoparticles to enhance the performance of multi-walled carbon nanotube-FeO supercapacitor anodes. Our experimental results demonstrate significant improvements in electrode performance when murexide is used as a capping or dispersing agent compared to the case with no additives. When murexide is used as a capping agent, we report a capacitance of 4.2 F cm from cyclic voltammetry analysis with good capacitance retention at high scan rate. From impedance measurements, we reveal a substantial decrease in the real part of impedance for samples prepared with murexide, indicating easier charge transfer at more negative electrode potentials, and reinforcing the role of murexide as a capping agent and charge transfer mediator. Density functional theory is used to investigate…
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Taxonomy
TopicsSupercapacitor Materials and Fabrication · Carbon Nanotubes in Composites · Advancements in Battery Materials
