Please use this identifier to cite or link to this item: https://dspace.iiti.ac.in/handle/123456789/12671
Title: Porous nanorods by stacked NiO nanoparticulate exhibiting corn-like structure for sustainable environmental and energy applications
Authors: Manjunath, Vishesh
Bimli, Santosh
Singh, Diwakar
Bhobe, Preeti Anand
Devan, Rupesh S.
Issue Date: 2023
Publisher: Royal Society of Chemistry
Citation: Manjunath, V., Bimli, S., Singh, D., Biswas, R., Didwal, P. N., Haldar, K. K., Deshpande, N. G., Bhobe, P. A., & Devan, R. S. (2023). Porous nanorods by stacked NiO nanoparticulate exhibiting corn-like structure for sustainable environmental and energy applications. RSC Advances. Scopus. https://doi.org/10.1039/d3ra03209d
Abstract: A porous 1D nanostructure provides much shorter electron transport pathways, thereby helping to improve the life cycle of the device and overcome poor ionic and electronic conductivity, interfacial impedance between electrode-electrolyte interface, and low volumetric energy density. In view of this, we report on the feasibility of 1D porous NiO nanorods comprising interlocked NiO nanoparticles as an active electrode for capturing greenhouse CO2, effective supercapacitors, and efficient electrocatalytic water-splitting applications. The nanorods with a size less than 100 nm were formed by stacking cubic crystalline NiO nanoparticles with dimensions less than 10 nm, providing the necessary porosity. The existence of Ni2+ and its octahedral coordination with O2− is corroborated by XPS and EXAFS. The SAXS profile and BET analysis showed 84.731 m2 g−1 surface area for the porous NiO nanorods. The NiO nanorods provided significant surface-area and the active-surface-sites thus yielded a CO2 uptake of 63 mmol g−1 at 273 K via physisorption, a specific-capacitance (CS) of 368 F g−1, along with a retention of 76.84% after 2500 cycles, and worthy electrocatalytic water splitting with an overpotential of 345 and 441 mV for HER and OER activities, respectively. Therefore, the porous 1D NiO as an active electrode shows multifunctionality toward sustainable environmental and energy applications. © 2023 The Royal Society of Chemistry.
URI: https://doi.org/10.1039/d3ra03209d
https://dspace.iiti.ac.in/handle/123456789/12671
ISSN: 2046-2069
Type of Material: Journal Article
Appears in Collections:Department of Metallurgical Engineering and Materials Sciences

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