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dc.contributor.authorFortunato, Elvira
dc.contributor.authorJana, Santanu
dc.contributor.authorCalmeiro, Tomas
dc.contributor.authorNunes, Daniela
dc.contributor.authorDeuermeier, Jonas
dc.contributor.authorMartins, Rodrigo
dc.contributor.authorPanigrahi, Shrabani
dc.date.accessioned2022-02-18T09:39:15Z
dc.date.available2022-02-18T09:39:15Z
dc.date.issued2019
dc.identifier.citationPanigrahi S., Jana S., Calmeiro T., Nunes D., Deuermeier J., Martins R., Fortunato E., "Mapping the space charge carrier dynamics in plasmon-based perovskite solar cells", JOURNAL OF MATERIALS CHEMISTRY A, cilt.7, sa.34, ss.19811-19819, 2019
dc.identifier.issn2050-7488
dc.identifier.othervv_1032021
dc.identifier.otherav_507f3cd6-1ef5-4aac-ad02-27eef0b8e149
dc.identifier.urihttp://hdl.handle.net/20.500.12627/177669
dc.identifier.urihttps://doi.org/10.1039/c9ta02852h
dc.description.abstractEnergy conversion by the surface plasmon effect is considered a promising alternative to an effective transformation of solar energy in photovoltaic devices through the generation of hot electrons in plasmonic nanostructures. Here, we report the direct visualization of the space charge potential profile across the cross-section of perovskite solar cells before and after plasmonic treatment and the nanoscale photoresponses of perovskite thin films to gain key insights into the fundamental mechanism of the charge carrier dynamics inside the cells during operation. Understanding the charge transport dynamics inside the solar cells is important for identifying the basic processes of the photovoltaic mechanism. Plasmon resonances in metal nanostructures and the accelerated charge transfer improved the overall performances of the solar cells. The recorded photocurrent images reveal an enhanced photo-response at the nanoscale for the plasmonic solar cells due to hot electron generation in Au nanoparticles. In addition, the potential-profiling results also indicate enhanced charge separation in the plasmon-based solar cells, which is associated with the better performances of the devices. The results represent a new feature for plasmonic nanostructures in photovoltaics, which could lead to the tuning of the carrier transfer dynamics inside the cells.
dc.language.isoeng
dc.subjectZiraat
dc.subjectKİMYA, FİZİKSEL
dc.subjectKimya
dc.subjectTemel Bilimler (SCI)
dc.subjectENERJİ VE YAKITLAR
dc.subjectMühendislik
dc.subjectMühendislik, Bilişim ve Teknoloji (ENG)
dc.subjectMALZEME BİLİMİ, MULTIDISCIPLINARY
dc.subjectMalzeme Bilimi
dc.subjectTarımsal Bilimler
dc.subjectChemistry (miscellaneous)
dc.subjectGeneral Materials Science
dc.subjectEngineering (miscellaneous)
dc.subjectGeneral Chemistry
dc.subjectFuel Technology
dc.subjectPhysical and Theoretical Chemistry
dc.subjectSurfaces, Coatings and Films
dc.subjectEnergy (miscellaneous)
dc.subjectPhysical Sciences
dc.subjectTarım Makineleri
dc.subjectTarımda Enerji
dc.subjectBiyoyakıt Teknolojisi
dc.subjectFizikokimya
dc.subjectTemel Bilimler
dc.subjectMühendislik ve Teknoloji
dc.subjectEnergy Engineering and Power Technology
dc.subjectSurfaces and Interfaces
dc.subjectRenewable Energy, Sustainability and the Environment
dc.subjectMetals and Alloys
dc.subjectMaterials Chemistry
dc.subjectGeneral Engineering
dc.subjectGeneral Energy
dc.titleMapping the space charge carrier dynamics in plasmon-based perovskite solar cells
dc.typeMakale
dc.relation.journalJOURNAL OF MATERIALS CHEMISTRY A
dc.contributor.departmentUniversidade Nova De Lisboa , ,
dc.identifier.volume7
dc.identifier.issue34
dc.identifier.startpage19811
dc.identifier.endpage19819
dc.contributor.firstauthorID3387448


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