Recently, our group has investigated the surface chemistry of the most popular commercially available NPs-SnO 2 (Alfa-SnO 2) and found that the residual ligands have a detrimental effect on the
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Doping-based SnO 2 is an effective solution for enhancing the electron transport capacity and interface properties of ETL, leading to improved electron mining in PSCs.
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Perovskite solar cells (PSCs) have recently demonstrated a rapid power conversion efficiency of above 25%. In terms of physical properties, SnO 2 is similar to TiO 2 but with stronger charge extraction at the interface.
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Our approach enables rapid synthesis of high-quality SnO2 electron-transport layers with reduced defect densities. The resulting SnO2 thin films exhibit superior optoelectronic properties,...
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The prominent chemical bath deposition (CBD) method leverages tin dioxide (SnO 2) as an electron transport layer (ETL) in perovskite solar cells (PSCs), achieving exceptional efficiency.
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Nano-amassed micron-sized ZnO HS embedded in the photoanode can increase the light-harnessing capability without sacrificing the surface area as well as optical confinement of light by multiple
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In this study, for the first time, the effect of gamma-ray irradiation with a regulatory exemption dose on the amorphous SnO 2 ESL has been investigated using coin-type Co-60 radioactive sources.
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In this review, we examine PSCs employing SnO 2 ETLs with power conversion efficiencies (PCEs) exceeding 24 %, identifying their common characteristics and limitations.
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Seo et al. present an approach to regulate the formation and optoelectronic quality of the SnO2 electrodes, improving electroluminescence and efficiency in perovskite solar cells.
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In this study, Mg 2+ ions were introduced into SnO 2 to substitute Sn sites, leading to an increase in the open-circuit voltage (V oc) of PSCs, and consequently enhancing overall device efficiency.
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