研究目的
Investigating the photovoltaic performance of dye-sensitized solar cells (DSSCs) containing ZnO microrods and nanoflowers, focusing on the effects of growth time on the cells' efficiency.
研究成果
The study concludes that ZnO microrods improve the power conversion efficiency (PCE) of DSSCs more effectively than nanoflowers, primarily due to a retardation of interfacial charge recombination. The optimal growth time for ZnO was found to be 8 hours, resulting in the highest PCE.
研究不足
The study is limited to the effects of growth time on the morphology and performance of ZnO-based DSSCs. The efficiency of the cells is relatively low, and the study does not explore the optimization of other parameters that could potentially improve performance.
1:Experimental Design and Method Selection
The study utilized a chemical bath deposition method at 90 °C to form ZnO nanoflowers and microrods on F-doped SnO2 glass with a seed layer. The morphology and photovoltaic performance of these structures were analyzed.
2:Sample Selection and Data Sources
FTO glass with a seed layer was used as the substrate. The growth time of ZnO was varied from 4 to 10 hours to study its effect on the morphology and performance of DSSCs.
3:List of Experimental Equipment and Materials
FTO glass, Zn(NO3)2·6H2O, (CH2)6N4, N719 dye, Pt paste, and various solvents and chemicals for the preparation of DSSCs.
4:Experimental Procedures and Operational Workflow
The FTO glass was cleaned and coated with a seed layer. ZnO structures were grown by immersing the seeded FTO glass in a growth solution for varying times. The grown ZnO structures were then sensitized with dyes and used to fabricate DSSCs.
5:Data Analysis Methods
The photovoltaic performance was measured using a solar simulator. The morphology of ZnO structures was analyzed using FE-SEM. Electrochemical impedance spectroscopy and dark current measurements were used to study charge recombination.
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FE-SEM
S-4800
Hitachi High-Technology
Visualization of the morphology of ZnO microrods
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Digital microscope camera
OLYMPUS SZ61
OLYMPUS
Measurement of the active area of the ZnO layer
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FTO glass
TCO22-7
Solaronix
Substrate for the deposition of ZnO structures
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N719 dye
Ruthenizer 535-bisTBA
Solaronix
Dye for sensitizing ZnO structures
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Pt paste
PT-1
Dyesol-Timo
Source for the counter electrode
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CompactStat potentiostat
Ivium Technologies B.V.
Measurement of photocurrent and photovoltage
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PEC-L01 solar simulator system
Peccell Technologies, Inc.
Measurement of photocurrent and photovoltage
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Silicon photodiode
PEC-SI01
Peccell Technologies, Inc.
Adjustment of light intensity to 1 sun (100 mW/cm2)
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Spectrophotometer
NEOSYS 2000
SINCO
Measurement of UV-visible absorbance
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Electrochemical analyzer
CompactStat
Ivium Technologies B.V.
Electrochemical impedance spectroscopic (EIS) analysis
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