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Potential of chalcogenide halide bismuth perovskites ch3nh3bichi2 (ch = s, se,) as solar absorbers based on theoretical study

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dc.contributor.author Jayawardane, JTST
dc.contributor.author Sewvandi, GA
dc.contributor.editor Rathnayake, M
dc.contributor.editor Adhikariwatte, V
dc.contributor.editor Hemachandra, K
dc.date.accessioned 2022-11-01T03:30:48Z
dc.date.available 2022-11-01T03:30:48Z
dc.date.issued 2022-07
dc.identifier.citation J. T. S. T. Jayawardane and G. A. Sewvandi, "Potential of Chalcogenide Halide Bismuth Perovskites CH3NH3BiChI2 (Ch = S, Se,) as Solar Absorbers based on Theoretical Study," 2022 Moratuwa Engineering Research Conference (MERCon), 2022, pp. 1-5, doi: 10.1109/MERCon55799.2022.9906215. en_US
dc.identifier.uri http://dl.lib.uom.lk/handle/123/19341
dc.description.abstract Organo lead halide perovskite has received a great deal of attention in the past couple of years due to its excellent optoelectronic properties. However, the presence of toxic lead in these materials is a significant concern for human health. Therefore, it is essential to select the elements for solar cell design that are environmentally friendly and conducive to human health. Many non-toxic alternatives can be used to solve this problem. Among those alternatives, Bismuth-based perovskite has become a promising alternative due to similar photovoltaic properties and enhanced environmental stability. Bismuth ternary based halide has interected due to their superior stability, but the main disadvantage is their wide band gap for single junction solar cells. The incorporation of the chalcogenide anions into bismuth chalcogenides was reported to have smaller bandgaps than that of the halide bismuth perovskites, which could reduce their bandgaps without affecting their photovoltaic properties. Band gap and dominant band to band absorption could be predictable from electronic property calculations using ground state density functional theory (DFT) as the lowest energy difference between the conduction band minimum (CBM) and the valence band maximum (VBM). As a result, for photovoltaic applications, the structural and band gap properties of mixed chalcogen and halogen anions, CH 3 NH 3 Bi (Ch, X)3 (Ch = chalcogen; X = halogen), were calculated using a combination of density- functional theory calculations. Results reveal that the band gaps of CH 3 NH 3 BiChI 2 S and CH 3 NH 3 BiChI 2 Se are 1.39 eV and 1.34 eV, which are in the range of band gaps required for photovoltaics. en_US
dc.language.iso en en_US
dc.publisher IEEE en_US
dc.relation.uri https://ieeexplore.ieee.org/document/9906215 en_US
dc.subject Chalcogenide en_US
dc.subject Band gap en_US
dc.subject Density of state en_US
dc.subject Perovskite.Solar absorber en_US
dc.title Potential of chalcogenide halide bismuth perovskites ch3nh3bichi2 (ch = s, se,) as solar absorbers based on theoretical study en_US
dc.type Conference-Full-text en_US
dc.identifier.faculty Engineering en_US
dc.identifier.department Engineering Research Unit, University of Moratuwa en_US
dc.identifier.year 2022 en_US
dc.identifier.conference Moratuwa Engineering Research Conference 2022 en_US
dc.identifier.place Moratuwa, Sri Lanka en_US
dc.identifier.proceeding Proceedings of Moratuwa Engineering Research Conference 2022 en_US
dc.identifier.email Jayawardanejtst.19@uom.lk
dc.identifier.email galhenagea@uom.lk
dc.identifier.doi 10.1109/MERCon55799.2022.9906215 en_US


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