研究目的
Investigating how a fluorinated donor polymer affects the morphology and performance of all-polymer solar cells based on naphthalene diimide-arylene copolymer acceptors.
研究成果
The study concludes that a fluorinated donor polymer can significantly influence the photovoltaic performance of all-PSCs through its effects on blend morphology and photophysics. The PM6:PNDIS blend system demonstrated high efficiency and robustness to processing methods and active layer thicknesses, while the PM6:PNDIBS system showed poor performance due to unfavorable blend morphology and high recombination rates.
研究不足
The study highlights the technical constraints related to the blend morphology and photophysics that affect the performance of all-PSCs. The PM6:PNDIBS blend system showed poor performance despite favorable optical bandgap energy loss and enhanced Voc, indicating limitations in achieving optimal blend morphology and photophysics.
1:Experimental Design and Method Selection:
The study involved the use of naphthalene diimide (NDI)-biselenophene copolymer (PNDIBS) and NDI-selenophene copolymer (PNDIS) with the fluorinated donor polymer PM6 to investigate their effects on all-polymer solar cells (all-PSCs). The photovoltaic properties were characterized through J-V measurements and EQE spectra.
2:Sample Selection and Data Sources:
The donor polymer PM6 was purchased from Solarmer Energy Inc, while PNDIS and PNDIBS were synthesized in the lab. Optical absorption spectra were obtained using a PerkinElmer Lambda 900 UV-vis/near-IR spectrophotometer.
3:List of Experimental Equipment and Materials:
The study utilized a PerkinElmer Lambda 900 UV-vis/near-IR spectrophotometer, gel-permeation chromatography (GPC), cyclic voltammetry (CV) experiments on an EG&G Princeton Applied Research Potentiostat/Galvanostat, and a solar simulator (Model 16S, Solar Light Co.) for photovoltaic measurements.
4:Experimental Procedures and Operational Workflow:
Solar cells were fabricated with an inverted architecture of ITO/ZnO/PEI/Blend/MoO3/Ag. The blend solutions were spin-coated and thermally annealed. The photovoltaic properties were measured under AM
5:5G solar illumination. Data Analysis Methods:
The charge carrier mobilities were deduced by fitting the J-V curves to the Mott?Gurney equation. The crystal coherence length (Lc) was determined using the Scherrer equation.
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