Enhanced supercapacitor performance of a Cu-Fe 2 O 3 /g-C 3 N 4 composite material: synthesis, characterization, and electrochemical analysis

A Cu-doped Fe O /g-C N composite, synthesized a straightforward hydrothermal process with controlled morphologies, represents a significant advancement in supercapacitor electrode materials. This study systematically analyzes the impact of Cu doping in Fe O and its synergistic combination with g-C N...

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Veröffentlicht in:RSC advances 2024-01, Vol.14 (7), p.4917-4929
Hauptverfasser: Harak, Chetan, Kadam, Vinayak, Gavhane, Rakhamaji, Balgude, Sagar, Rakshe, Anil, Brahmankar, Neha, Uke, Santosh, Satpute, Dilip, Pawar, Hari, Mardikar, Satish
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container_end_page 4929
container_issue 7
container_start_page 4917
container_title RSC advances
container_volume 14
creator Harak, Chetan
Kadam, Vinayak
Gavhane, Rakhamaji
Balgude, Sagar
Rakshe, Anil
Brahmankar, Neha
Uke, Santosh
Satpute, Dilip
Pawar, Hari
Mardikar, Satish
description A Cu-doped Fe O /g-C N composite, synthesized a straightforward hydrothermal process with controlled morphologies, represents a significant advancement in supercapacitor electrode materials. This study systematically analyzes the impact of Cu doping in Fe O and its synergistic combination with g-C N to understand their influence on the electrochemical performance of the resulting composite, focusing on Cu doping in Fe O rather than varying Fe O /g-C N content. The comprehensive characterization of these composites involved a suite of physicochemical techniques. X-ray diffraction (XRD) confirmed the successful synthesis of the composite, while field emission scanning electron microscopy (FESEM) and transmission electron microscopy (TEM) were employed to investigate the morphological attributes of the synthesized materials. X-ray photoelectron spectroscopy (XPS) spectra confirmed the elemental composition of the composite with 6% Cu doped Fe O /g-C N . The composite electrode, which incorporated 6% Cu doped Fe O with g-C N , exhibited exceptional cycling stability, retaining 94.22% of its capacity even after 2000 charge-discharge cycles at a current density of 5 mA cm . Furthermore, this Cu doped Fe O /g-C N composite electrode demonstrated impressive electrochemical performance, boasting a specific capacitance of 244.0 F g and an impressive maximum energy density of 5.31 W h kg at a scan rate of 5 mV s . These findings highlight the substantial potential of the Cu doped Fe O /g-C N electrode for supercapacitor applications.
doi_str_mv 10.1039/d3ra08428k
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title Enhanced supercapacitor performance of a Cu-Fe 2 O 3 /g-C 3 N 4 composite material: synthesis, characterization, and electrochemical analysis
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