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Please use this identifier to cite or link to this item: https://libeldoc.bsuir.by/handle/123456789/49563
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dc.contributor.authorDanilyuk, A. L.-
dc.contributor.authorSidorova, T. N.-
dc.contributor.authorBorisenko, V. E.-
dc.contributor.authorHong Wang-
dc.contributor.authorRusli Rusli-
dc.contributor.authorChenjin Lu-
dc.coverage.spatialGermanyru_RU
dc.date.accessioned2022-12-21T11:35:36Z-
dc.date.available2022-12-21T11:35:36Z-
dc.date.issued2022-
dc.identifier.citationAn Enhanced Charge Carrier Separation in a Heterojunction Solar Cell with a Metal Oxide / A. L. Danilyuk [et al.] // Physica Status Solidi (A). – 2022. – P. 2100525. – DOI: 10.1002/pssa.202100525.ru_RU
dc.identifier.urihttps://libeldoc.bsuir.by/handle/123456789/49563-
dc.description.abstractA model of charge carrier transport in heterojunction solar cells composed of a solar light-absorbing semiconductor and a wide-bandgap semiconducting metal oxide is proposed. It describes an electric field in the semiconductor originating from the difference in the electron work functions between the two contacting materials, an enhanced hole separation by this field, and subsequent trap-assisted tunneling of holes through the semiconducting oxide. The model predicts a dramatic influence of the donor concentration in the semiconductor, trap parameters in the oxide, and ideality factor of the semiconductor/oxide heterojunction on the performance of the cell.ru_RU
dc.language.isoenru_RU
dc.publisherJohn Wiley & Sonsru_RU
dc.subjectпубликации ученыхru_RU
dc.subjectcharge carrier separationsru_RU
dc.subjecthole transportsru_RU
dc.subjectsolar cellsru_RU
dc.titleAn Enhanced Charge Carrier Separation in a Heterojunction Solar Cell with a Metal Oxideru_RU
dc.typeArticleru_RU
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