This study investigates the impact of incorporating carbon quantum dots (CQDs) into the SnO 2 electron transport layer (ETL) on the performance of all-inorganic CsPbBr 3 perovskite solar cells (PSCs). CQDs with abundant surface functional groups were synthesized hydrothermally and integrated into a low-temperature, solution-processed SnO 2 ETL at varying concentrations (0%, 2% and 4%). Comprehensive characterization revealed that the SnO 2 : CQDs composite films exhibited enhanced optical absorption, a reduced optical bandgap and improved film morphology with superior homogeneity and reduced pinholes. While XRD analysis confirmed that the CQDs did not alter the crystalline structure of SnO 2 , electrical characterization demonstrated a significant boost in device performance. The champion device utilizing the SnO 2 : CQDs (4%) ETL achieved a power conversion efficiency (PCE) of 9.41%, representing an 11.9% enhancement over the control device with pristine SnO 2 (8.41%). This improvement is attributed to superior charge extraction, reduced interfacial recombination and optimized energy level alignment. This work underscores the efficacy of CQDs as a simple yet powerful interfacial modifier for advancing high-performance, inorganic PSCs.
The reaction of LAs-Cl8 : [ (2,2- (1-(3,4-bis(carboxylicdichloromethoxy)-5-oxo-2,5- dihydrofuran-2-yl)ethane – 1,2-diyl)bis(2,2-dichloroacetic acid)]with sodium azide in ethanol with drops of distilled water has been investigated . The new product L-AZ :(3Z ,5Z,8Z)-2- azido-8-[azido(3Z,5Z)-2-azido-2,6-bis(azidocarbonyl)-8,9-dihydro-2H-1,7-dioxa-3,4,5- triazonine-9-yl]methyl]-9-[(1-azido-1-hydroxy)methyl]-2H-1,7-dioxa-3,4,5-triazonine – 2,6 – dicarbonylazide was isolated and characterized by elemental analysis (C.H.N) , 1H-NMR , Mass spectrum and Fourier transform infrared spectrophotometer (FT-IR) . The reaction of the L-AZ withM+n: [ ( VO(II) , Cr(III) ,Mn(II) , Co(II) , Ni(II) , Cu(II) , Zn(II) , Cd(II) and Hg(II)] has been i
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