Cargando…

Gadolinium doped zinc ferrite nanoarchitecture reinforced with a carbonaceous matrix: a novel hybrid material for next-generation flexible capacitors

Herein, nanostructured Gd-doped ZnFe(2)O(4) (GZFO) has been synthesized via the sol–gel route and its CNT-reinforced nanohybrid was formed via an advanced ultrasonication method. The as-synthesized, hybrid electroactive materials have been supported on aluminum foil (AF) to design a flexible electro...

Descripción completa

Detalles Bibliográficos
Autores principales: Aadil, Muhammad, Taki, Anmar Ghanim, Zulfiqar, Sonia, Rahman, Abdur, Shahid, Muhammad, Warsi, Muhammad Farooq, Ahmad, Zubair, Alothman, Asma A., Mohammad, Saikh
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10517144/
https://www.ncbi.nlm.nih.gov/pubmed/37746331
http://dx.doi.org/10.1039/d3ra05290g
_version_ 1785109265160077312
author Aadil, Muhammad
Taki, Anmar Ghanim
Zulfiqar, Sonia
Rahman, Abdur
Shahid, Muhammad
Warsi, Muhammad Farooq
Ahmad, Zubair
Alothman, Asma A.
Mohammad, Saikh
author_facet Aadil, Muhammad
Taki, Anmar Ghanim
Zulfiqar, Sonia
Rahman, Abdur
Shahid, Muhammad
Warsi, Muhammad Farooq
Ahmad, Zubair
Alothman, Asma A.
Mohammad, Saikh
author_sort Aadil, Muhammad
collection PubMed
description Herein, nanostructured Gd-doped ZnFe(2)O(4) (GZFO) has been synthesized via the sol–gel route and its CNT-reinforced nanohybrid was formed via an advanced ultrasonication method. The as-synthesized, hybrid electroactive materials have been supported on aluminum foil (AF) to design a flexible electrode for hybrid capacitor (HC) applications. Nanostructured material synthesis, Gd-doping, and CNT reinforcement approaches have been adopted to develop a rationally designed electrode with a high surface area, boosted electrical conductivity, and enhanced specific capacitance. Electrochemical impedance spectroscopy, galvanostatic charge/discharge, and cyclic voltammetry processes have been used to measure the electrochemical performance of the prepared ferrite material-based working electrodes in a 3M KOH solution. A nanohybrid-based working electrode (GZFO/C@AF) shows superior rate capacitive and electrochemical aptitude (specific capacitance, rate performance, and cyclic activity) than its counterpart working electrodes (ZFO@AF and GZFO@AF). The hybrid working electrode (GZFO/C@AF electrode) shows a high specific capacitance of 887 F g(−1) and good retention of 94.5% for 7000 cycles (at 15 Ag(−1)). The maximum energy density and power density values for the GZFO/C@AF electrode are 40.025 Wh Kg(−1) and 279.78 W Kg(−1), respectively. Based on the findings of the electrochemical experiments, GZFO/C@AF shows promise as an electrode material for hybrid capacitors that provide energy to wearable electronic devices.
format Online
Article
Text
id pubmed-10517144
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-105171442023-09-24 Gadolinium doped zinc ferrite nanoarchitecture reinforced with a carbonaceous matrix: a novel hybrid material for next-generation flexible capacitors Aadil, Muhammad Taki, Anmar Ghanim Zulfiqar, Sonia Rahman, Abdur Shahid, Muhammad Warsi, Muhammad Farooq Ahmad, Zubair Alothman, Asma A. Mohammad, Saikh RSC Adv Chemistry Herein, nanostructured Gd-doped ZnFe(2)O(4) (GZFO) has been synthesized via the sol–gel route and its CNT-reinforced nanohybrid was formed via an advanced ultrasonication method. The as-synthesized, hybrid electroactive materials have been supported on aluminum foil (AF) to design a flexible electrode for hybrid capacitor (HC) applications. Nanostructured material synthesis, Gd-doping, and CNT reinforcement approaches have been adopted to develop a rationally designed electrode with a high surface area, boosted electrical conductivity, and enhanced specific capacitance. Electrochemical impedance spectroscopy, galvanostatic charge/discharge, and cyclic voltammetry processes have been used to measure the electrochemical performance of the prepared ferrite material-based working electrodes in a 3M KOH solution. A nanohybrid-based working electrode (GZFO/C@AF) shows superior rate capacitive and electrochemical aptitude (specific capacitance, rate performance, and cyclic activity) than its counterpart working electrodes (ZFO@AF and GZFO@AF). The hybrid working electrode (GZFO/C@AF electrode) shows a high specific capacitance of 887 F g(−1) and good retention of 94.5% for 7000 cycles (at 15 Ag(−1)). The maximum energy density and power density values for the GZFO/C@AF electrode are 40.025 Wh Kg(−1) and 279.78 W Kg(−1), respectively. Based on the findings of the electrochemical experiments, GZFO/C@AF shows promise as an electrode material for hybrid capacitors that provide energy to wearable electronic devices. The Royal Society of Chemistry 2023-09-21 /pmc/articles/PMC10517144/ /pubmed/37746331 http://dx.doi.org/10.1039/d3ra05290g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Aadil, Muhammad
Taki, Anmar Ghanim
Zulfiqar, Sonia
Rahman, Abdur
Shahid, Muhammad
Warsi, Muhammad Farooq
Ahmad, Zubair
Alothman, Asma A.
Mohammad, Saikh
Gadolinium doped zinc ferrite nanoarchitecture reinforced with a carbonaceous matrix: a novel hybrid material for next-generation flexible capacitors
title Gadolinium doped zinc ferrite nanoarchitecture reinforced with a carbonaceous matrix: a novel hybrid material for next-generation flexible capacitors
title_full Gadolinium doped zinc ferrite nanoarchitecture reinforced with a carbonaceous matrix: a novel hybrid material for next-generation flexible capacitors
title_fullStr Gadolinium doped zinc ferrite nanoarchitecture reinforced with a carbonaceous matrix: a novel hybrid material for next-generation flexible capacitors
title_full_unstemmed Gadolinium doped zinc ferrite nanoarchitecture reinforced with a carbonaceous matrix: a novel hybrid material for next-generation flexible capacitors
title_short Gadolinium doped zinc ferrite nanoarchitecture reinforced with a carbonaceous matrix: a novel hybrid material for next-generation flexible capacitors
title_sort gadolinium doped zinc ferrite nanoarchitecture reinforced with a carbonaceous matrix: a novel hybrid material for next-generation flexible capacitors
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10517144/
https://www.ncbi.nlm.nih.gov/pubmed/37746331
http://dx.doi.org/10.1039/d3ra05290g
work_keys_str_mv AT aadilmuhammad gadoliniumdopedzincferritenanoarchitecturereinforcedwithacarbonaceousmatrixanovelhybridmaterialfornextgenerationflexiblecapacitors
AT takianmarghanim gadoliniumdopedzincferritenanoarchitecturereinforcedwithacarbonaceousmatrixanovelhybridmaterialfornextgenerationflexiblecapacitors
AT zulfiqarsonia gadoliniumdopedzincferritenanoarchitecturereinforcedwithacarbonaceousmatrixanovelhybridmaterialfornextgenerationflexiblecapacitors
AT rahmanabdur gadoliniumdopedzincferritenanoarchitecturereinforcedwithacarbonaceousmatrixanovelhybridmaterialfornextgenerationflexiblecapacitors
AT shahidmuhammad gadoliniumdopedzincferritenanoarchitecturereinforcedwithacarbonaceousmatrixanovelhybridmaterialfornextgenerationflexiblecapacitors
AT warsimuhammadfarooq gadoliniumdopedzincferritenanoarchitecturereinforcedwithacarbonaceousmatrixanovelhybridmaterialfornextgenerationflexiblecapacitors
AT ahmadzubair gadoliniumdopedzincferritenanoarchitecturereinforcedwithacarbonaceousmatrixanovelhybridmaterialfornextgenerationflexiblecapacitors
AT alothmanasmaa gadoliniumdopedzincferritenanoarchitecturereinforcedwithacarbonaceousmatrixanovelhybridmaterialfornextgenerationflexiblecapacitors
AT mohammadsaikh gadoliniumdopedzincferritenanoarchitecturereinforcedwithacarbonaceousmatrixanovelhybridmaterialfornextgenerationflexiblecapacitors