研究目的
Investigating the effect of cobalt doping on band alignment and the performance of nanostructured ZnO/CuO heterojunction solar cells.
研究成果
The study demonstrates the importance of optimizing band alignment to enhance the performance of ZnO/CuO heterojunction solar cells. Cobalt doping up to 10% in ZnO nanorods and the insertion of a 20 nm thick MoO3 buffer layer significantly improved the power conversion efficiency to 2.11%. These findings pave the way for further improvements in oxide-based heterojunction solar cells.
研究不足
The study is limited by the technical constraints of the chemical bath deposition technique and the potential for optimization in the doping concentration and buffer layer thickness to further enhance solar cell performance.
1:Experimental Design and Method Selection:
The study employed a low-temperature and cost-effective chemical bath deposition technique for fabricating ZnO nanorods and CuO nanostructures. X-ray photoelectron spectroscopy was used to estimate band offsets.
2:Sample Selection and Data Sources:
Samples with varying cobalt doping levels (x = 0,
3:05, 10, 15, and 20) in Zn1?xCoxO were prepared. List of Experimental Equipment and Materials:
Equipment included FEI Inspect S50 scanning electron microscope, Rigaku SmartLab X-ray diffractometer, VARIAN Cary 50 Scan UV-Vis spectrometer, n&k 1200 Analyzer, XPS spectra acquisition setup, MMR H-50 Hall, van der Pauw controller, Keithley 2450 source meter, Oriel IQE 200 instruments, Agilent/HP 4274A multi-frequency LCR meter, and Omicron Bode 100 analyzer.
4:Experimental Procedures and Operational Workflow:
The fabrication process involved chemical bath deposition, followed by characterization using SEM, XRD, UV-Vis spectroscopy, XPS, Hall measurements, J-V characteristics, EQE measurements, capacitance measurements, and impedance spectroscopy.
5:Data Analysis Methods:
Data analysis included Rietveld refinement, Tauc plot for bandgap calculation, Mott-Schottky analysis for doping density and built-in potential, and equivalent circuit modeling for impedance spectroscopy.
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FEI Inspect S50
Inspect S50
FEI
Morphological characterization of prepared ZnO nanorods, CuO nanostructures, and MoO3 layer.
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Rigaku SmartLab X-ray diffractometer
SmartLab
Rigaku
Analysis of crystal structures.
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Keithley 2450 source meter
2450
Keithley
Measurement of the current–voltage (J–V) characteristics of the solar cells.
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Agilent/HP 4274A multi-frequency LCR meter
4274A
Agilent/HP
Capacitance measurements.
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VARIAN Cary 50 Scan UV-Vis spectrometer
Cary 50 Scan
VARIAN
Calculation of absorption spectra.
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n&k 1200 Analyzer
1200 Analyzer
n&k
Measurement of the thickness of different nanostructured layers.
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Oriel IQE 200 instruments
IQE 200
Oriel
Measurement of external quantum efficiency (EQE) spectra.
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Omicron Bode 100 analyzer
Bode 100
Omicron
Analysis of impedance spectra.
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