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3D printed interdigitated supercapacitor using reduced graphene oxide-MnO(x)/Mn(3)O(4) based electrodes

In this study hybrid nanocomposites (HNCs) based on manganese oxides (MnO(x)/Mn(3)O(4)) and reduced graphene oxide (rGO) are synthesized as active electrodes for energy storage devices. Comprehensive structural characterizations demonstrate that the active material is composed of MnO(x)/Mn(3)O(4) na...

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Detalles Bibliográficos
Autores principales: Mokhtarnejad, Mahshid, Ribeiro, Erick L., Mukherjee, Dibyendu, Khomami, Bamin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9189621/
https://www.ncbi.nlm.nih.gov/pubmed/35765434
http://dx.doi.org/10.1039/d2ra02009b
Descripción
Sumario:In this study hybrid nanocomposites (HNCs) based on manganese oxides (MnO(x)/Mn(3)O(4)) and reduced graphene oxide (rGO) are synthesized as active electrodes for energy storage devices. Comprehensive structural characterizations demonstrate that the active material is composed of MnO(x)/Mn(3)O(4) nanorods and nanoparticles embedded in rGO nanosheets. The development of such novel structures is facilitated by the extreme synthesis conditions (high temperatures and pressures) of the liquid-confined plasma plume present in the Laser Ablation Synthesis in Solution (LASiS) technique. Specifically, functional characterizations demonstrate that the performance of the active layer is highly correlated with the MnO(x)/Mn(3)O(4) to rGO ratio and the morphology of MnO(x)/Mn(3)O(4) nanostructures in HNCs. To that end, active layer inks comprising HNC samples prepared under optimal laser ablation time windows, when interfaced with a percolated conductive network of electronic grade graphene and carbon nanofibers (CNFs) mixture, indicate superior supercapacitance for functional electrodes fabricated via sequential inkjet printing of the substrate, current collector layer, active material layer, and gel polymer electrolyte layer. Electrochemical characterizations unequivocally reveal that the electrode with the LASiS synthesized MnO(x)/Mn(3)O(4)–rGO composite exhibits significantly higher specific capacitance compared to the ones produced with commercially available Mn(3)O(4)–graphene NCs. Moreover, the galvanostatic charge–discharge (GCD) experiments with the LASiS synthesized HNCs show a significantly larger charge storage capacity (325 F g(−1)) in comparison to NCs synthesized with commercially available Mn(3)O(4)–graphene (189 F g(−1)). Overall, this study has paved the way for use of LASiS-based synthesized functional material in combination with additive manufacturing techniques for all-printed electronics with superior performance.