研究目的
Investigating the effects of introducing π-conjugated Lewis base molecules on the efficiency and stability of tin-based perovskite solar cells.
研究成果
The introduction of π-conjugated Lewis base molecules significantly improves the efficiency and stability of tin-based perovskite solar cells by controlling the crystallization process and suppressing film degradation in air.
研究不足
The study focuses on the effects of π-conjugated Lewis base molecules on FASnI3 perovskite films and devices, with limited exploration of other perovskite materials or device architectures.
1:Experimental Design and Method Selection:
The study employed π-conjugated Lewis base molecules to control the crystallization rate of FASnI3 perovskite.
2:Sample Selection and Data Sources:
FASnI3 perovskite films were fabricated with and without the addition of π-conjugated Lewis base molecules.
3:List of Experimental Equipment and Materials:
ITO glass substrates, polyethylene glycol)-poly(3,4-ethylenedioxythiophene) polystyrene sulfonate (PEG-PEDOT:PSS), FASnI3 perovskite precursor solution, CDTA molecules, C60, bathocuproine (BCP), and Ag electrode.
4:Experimental Procedures and Operational Workflow:
Perovskite films were spin-coated on PEG-PEDOT:PSS layer, followed by thermal annealing and deposition of C60, BCP, and Ag electrode.
5:Data Analysis Methods:
XRD, UV-Vis absorption spectrum, XPS, SEM, AFM, TRPL, and device performance measurements were conducted.
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ITO glass substrates
Used as the substrate for the perovskite solar cells.
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PEG-PEDOT:PSS
Used as the hole transport layer in the perovskite solar cells.
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FASnI3 perovskite precursor solution
Used to fabricate the perovskite layer in the solar cells.
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CDTA molecules
Used to control the crystallization rate of FASnI3 perovskite.
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C60
Used as the electron transport layer in the perovskite solar cells.
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BCP
Used as the hole blocking layer in the perovskite solar cells.
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Ag electrode
Used as the top electrode in the perovskite solar cells.
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