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Plasmonic gold nanoparticle incorporated MgO-coated SnO2 photoanode for efficiency enhancement in dye-sensitized solar cells

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dc.contributor.author Dissanayake, M. A. K. L.
dc.contributor.author Umair, K.
dc.contributor.author Senadeera, G. K. R.
dc.contributor.author Jaseetharan, T.
dc.contributor.author Weerasinghe, A. M. J. S.
dc.contributor.author Wijayasinghe, H. W. M. A. C.
dc.date.accessioned 2022-08-26T04:13:55Z
dc.date.available 2022-08-26T04:13:55Z
dc.date.issued 2022-02
dc.identifier.citation Solar Energy (Vol. 233), February 2022. pp. 363-377. en_US
dc.identifier.issn 0038-092X
dc.identifier.uri https://doi.org/10.1016/j.solener.2022.01.038
dc.identifier.uri http://ir.lib.seu.ac.lk/handle/123456789/6227
dc.description.abstract SnO2 is an attractive semiconducting material suitable for application as the photoanode in dye-sensitized solar cells (DSSCs) due to its wide energy band gap and notable photostability. However, improved solar cell performance can be achieved only by using composites of SnO2 with other materials like MgO, ZnO, Al2O3, and CaCO3. In this study, plasmonic DSSCs were fabricated using MgO coated SnO2 (SnO2:MgO) based photoanodes incorporating gold nanoparticles (Au NP) having a size in the 30 – 35 nm range and sensitized with ruthenium N719 dye. Photoanodes were characterized by UV–VIS spectroscopy and the DSSCs were characterized by current-voltage (J– V) measurements, incident photon-to-electron conversion efficiency (IPCE) measurements and electrochemical impedance spectroscopy (EIS). Under the illumination of 100 mW cm−2 (AM 1.5), the efficiency (η) of the reference DSSC with pristine SnO2 photoanode was 1.52%, whereas the efficiency of the optimized plasmonic DSSC with Au NP incorporated SnO2:MgO photoanode (Au: SnO2:MgO) was an impressive 4.69%. This efficiency enhancement of about 208% compared to the reference DSSC appears to be due to the increased open-circuit voltage (VOC) of 725.6 and increased short-circuit photocurrent density (JSC) of 9.06 mA cm−2 respectively evidently caused by the reduced electron recombination by ultra-thin MgO barrier layer and the enhanced light-harvesting caused by the local surface plasmon resonance (LSPR) effect due to Au nanoparticles. EIS analysis showed that the incorporation of plasmonic Au metal nanoparticles lead to a decrease in the series resistance (RS) and the interfacial charge transfer resistance (RCT) at the SnO2/electrolyte interface. en_US
dc.language.iso en_US en_US
dc.publisher Elsevier Science en_US
dc.title Plasmonic gold nanoparticle incorporated MgO-coated SnO2 photoanode for efficiency enhancement in dye-sensitized solar cells en_US
dc.type Article en_US


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