研究目的
To investigate the effects of various organic solvents on the PCBM electron transport layer (ETL) of perovskite solar cells (PSCs) and to identify the most suitable solvent for the ETL to achieve ETL and PSC optimization.
研究成果
DCB is a solvent with a high boiling point, low vapor pressure, and high dielectric constant, and using it as the PCBM ETL solvent yields satisfactory ETL uniformity, coverage, and surface roughness as well as excellent device performance, thus making it the most suitable solvent for preparing the ETL of PSCs.
研究不足
The study is limited to the four organic solvents (DCB, CB, MB, and CF) and their effects on the PCBM ETL of PSCs. The findings may not be generalizable to other solvents or ETL materials. Additionally, the study does not explore the long-term stability of the PSCs with different ETL solvents.
1:Experimental Design and Method Selection:
The study used four organic solvents (DCB, CB, MB, and CF) as solvents in the PCBM ETL of PSCs. The effects of these solvents on the ETL and PSC were investigated using OM, SEM, AFM, XRD, XPS, UV-Vis spectrometer, J–V curve, EQE, and EIS measurements.
2:Sample Selection and Data Sources:
The perovskite precursor solution was prepared using PbI2 powder and CH3NH3I powder in a mixed solvent of DMSO and GBL. The ETL solution was prepared by adding PCBM powder into DCB, CB, MB, or CF.
3:List of Experimental Equipment and Materials:
Optical microscope (OM), scanning electron microscope (SEM, JEOL JSM-7000F), atomic force microscope (AFM, AutoProbe CP), X-ray diffractometer (XRD, Rigaku D/Max-2500V), X-ray photoelectron spectroscope (XPS, Thermo K-Alpha), ultraviolet-visible (UV-Vis) spectrometer (Optizen Pop), current density–voltage (J–V) curve analysis (CH Instruments 6116D), external quantum efficiency (EQE) analysis (QE-R), and electrochemical impedance spectroscopy (EIS) analysis (CH Instruments 6116D).
4:Experimental Procedures and Operational Workflow:
The PSC devices were fabricated by spin-coating the perovskite precursor solution and ETL solution onto FTO glass substrates, followed by evaporation deposition of the Ag metal electrode.
5:Data Analysis Methods:
The data were analyzed using the respective instruments and software tools for each measurement technique.
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Scanning Electron Microscope
JSM-7000F
JEOL
Observing the surface morphology of the ETL
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X-ray Diffractometer
D/Max-2500V
Rigaku
Observing the crystal structure of the ETL
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X-ray Photoelectron Spectroscope
K-Alpha
Thermo Fisher Scientific
Observing the surface element bonding of the ETL
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Current Density–Voltage Analyzer
6116D
CH Instruments
Analyzing the characteristics of the PSC device
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Electrochemical Impedance Spectroscopy Analyzer
6116D
CH Instruments
Analyzing the impedance characteristics of the PSC device
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Optical Microscope
OM
Observing the surface morphology of the ETL
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Atomic Force Microscope
AutoProbe CP
Thermomicroscopes
Observing the surface roughness of the ETL
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Ultraviolet-Visible Spectrometer
Optizen Pop
Mecasys
Exploring the absorption spectrum of the perovskite layer
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External Quantum Efficiency Analyzer
QE-R
Enlitech
Analyzing the external quantum efficiency of the PSC device
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