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Designing a 3D nanoporous network via self-assembly of WO sub(3) nanorods for improved electrocapacitive performance

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dc.contributor.author Salkar, A.V.
dc.contributor.author Naik, A.P.
dc.contributor.author Joshi, V.S.
dc.contributor.author Haram, S.K.
dc.contributor.author Morajkar, P.P.
dc.date.accessioned 2018-10-30T06:13:33Z
dc.date.available 2018-10-30T06:13:33Z
dc.date.issued 2018
dc.identifier.citation CrystEngComm. 20(42); 2018; 6683-6694. en_US
dc.identifier.uri https://doi.org/10.1039/C8CE01257A
dc.identifier.uri http://irgu.unigoa.ac.in/drs/handle/unigoa/5478
dc.description.abstract This work presents the first report on effective utilization of protonated urea as a novel nanostructure directing agent, under controlled conditions of pH, calcination temperature and time, to design 3D WO sub(3) nanoporous networks using self-assembly of WO sub(3) nanorods. The synthesized nanostructures are characterized for their phase purity, shape, size and morphology using various surface characterization techniques. The effect of nanostructure design and dimensionality on improved electrocapacitive performance is investigated by measuring the H sup(+) intercalation efficiency using cyclic voltammetry. The highest H sup(+) diffusion coefficient of 1.3 × 10 sup(−7) cm sup(2) s sup(−1) and specific capacitance of 148 F g sup(−1) are measured for 3D WO sub(3) nanoporous structures. The improved electrocapacitive performance is attributed to the 3D surface heterostructure and the presence of well aligned porous channels, which together provide facile diffusion of H sup(+) ions and a greater electroactive surface area. The simplicity and flexibility of the synthesis method to produce multidimensional WO sub(3) nanostructures of improved electrocapacitive performance demonstrate promising results for device scale applications. en_US
dc.publisher Royal Society of Chemistry en_US
dc.subject Chemistry en_US
dc.title Designing a 3D nanoporous network via self-assembly of WO sub(3) nanorods for improved electrocapacitive performance en_US
dc.type Journal article en_US
dc.identifier.impf y


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