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dc.contributor.authorLeoncini, Mauro-
dc.contributor.authorGiannuzzi, Roberto-
dc.contributor.authorGiuri, Antonella-
dc.contributor.authorColella, Silvia-
dc.contributor.authorGambino, Salvatore-
dc.date.accessioned2022-05-31T03:19:50Z-
dc.date.available2022-05-31T03:19:50Z-
dc.date.issued2021-
dc.identifier.citationLeoncini, M., ... et al. (2021). Electronic transport, ionic activation energy and trapping phenomena in a polymer-hybrid halide perovskite composite. Journal of Science: Advanced Materials and Devices, 6 (4), tr. 543-550.vi
dc.identifier.urihttp://repository.vnu.edu.vn/handle/VNU_123/140608-
dc.description.abstractThe exploitation of methylammonium lead iodide perovskite-polymer composites is a promising strat- egy for the preparation of photoactive thin layers for solar cells. The preparation of these composites is a simple fabrication method with improved moisture stability when compared to that of pristine perov- skite films. To deepen the understanding of the charge transport properties of these films, we investi- gated charge carrier mobility, traps, and ion migration. For this purpose, we applied a combinatory measurement approach that proves how such composites can still retain an ambipolar charge transport nature and the same mobility values of the related perovskite. Furthermore, thermally stimulated current measurements revealed that the polymer influenced the creation of additional defects during film for- mation without affecting charge mobility. Finally, impedance spectroscopy measurements suggested the addition of starch may hinder ion migration, which would require larger activation energies to move ions in composite films. These results pave the way for new strategies of polymer-assisted perovskite film developmentvi
dc.language.isoenvi
dc.publisherĐại học Quốc gia Hà Nộivi
dc.subjectSpace Charge Limited Current (SCLC)vi
dc.subjectThermally Stimulated Current (TSC)vi
dc.subjectCharge transportvi
dc.subjectMobility Perovskite thin filmvi
dc.titleElectronic transport, ionic activation energy and trapping phenomena in a polymer-hybrid halide perovskite compositevi
dc.typeJournal Articlevi
Appears in Collections:Advanced Materials and Devices


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  • Full metadata record
    DC FieldValueLanguage
    dc.contributor.authorLeoncini, Mauro-
    dc.contributor.authorGiannuzzi, Roberto-
    dc.contributor.authorGiuri, Antonella-
    dc.contributor.authorColella, Silvia-
    dc.contributor.authorGambino, Salvatore-
    dc.date.accessioned2022-05-31T03:19:50Z-
    dc.date.available2022-05-31T03:19:50Z-
    dc.date.issued2021-
    dc.identifier.citationLeoncini, M., ... et al. (2021). Electronic transport, ionic activation energy and trapping phenomena in a polymer-hybrid halide perovskite composite. Journal of Science: Advanced Materials and Devices, 6 (4), tr. 543-550.vi
    dc.identifier.urihttp://repository.vnu.edu.vn/handle/VNU_123/140608-
    dc.description.abstractThe exploitation of methylammonium lead iodide perovskite-polymer composites is a promising strat- egy for the preparation of photoactive thin layers for solar cells. The preparation of these composites is a simple fabrication method with improved moisture stability when compared to that of pristine perov- skite films. To deepen the understanding of the charge transport properties of these films, we investi- gated charge carrier mobility, traps, and ion migration. For this purpose, we applied a combinatory measurement approach that proves how such composites can still retain an ambipolar charge transport nature and the same mobility values of the related perovskite. Furthermore, thermally stimulated current measurements revealed that the polymer influenced the creation of additional defects during film for- mation without affecting charge mobility. Finally, impedance spectroscopy measurements suggested the addition of starch may hinder ion migration, which would require larger activation energies to move ions in composite films. These results pave the way for new strategies of polymer-assisted perovskite film developmentvi
    dc.language.isoenvi
    dc.publisherĐại học Quốc gia Hà Nộivi
    dc.subjectSpace Charge Limited Current (SCLC)vi
    dc.subjectThermally Stimulated Current (TSC)vi
    dc.subjectCharge transportvi
    dc.subjectMobility Perovskite thin filmvi
    dc.titleElectronic transport, ionic activation energy and trapping phenomena in a polymer-hybrid halide perovskite compositevi
    dc.typeJournal Articlevi
    Appears in Collections:Advanced Materials and Devices


    Thumbnail
  • 1-s2.0-S2468217921000575-main.pdf
    • Size : 1,77 MB

    • Format : Adobe PDF

    • View : 
    • Download :