研究目的
To improve the power conversion efficiency (PCE) of quantum dot-sensitized solar cells (QDSC) by synthesizing absorbent cotton derived carbon quantum dots (CQDs) with different dopants and studying their effects on the photoelectric properties of QDSC.
研究成果
The study successfully synthesized doped CQDs with improved optical and photoelectric properties, leading to enhanced PCE in QDSCs. The 1,3-diaminopropane doped CQDs showed the highest PCE improvement. The research provides insights into the relationship between CQD microstructure, their characteristics, and QDSC performance, offering guidance for future optimization of CQD doping for solar cell applications.
研究不足
The study is limited to the synthesis and characterization of CQDs from absorbent cotton with specific dopants and their application in QDSCs. The scalability and long-term stability of the QDSCs were not addressed.
1:Experimental Design and Method Selection:
A one-pot hydrothermal method was used to synthesize CQDs from absorbent cotton with different dopants (carbamide, thiourea, and 1,3-diaminopropane).
2:Sample Selection and Data Sources:
Absorbent cotton was used as the carbon source, and the dopants were selected based on their potential to modify the properties of CQDs.
3:List of Experimental Equipment and Materials:
Teflon-lined stainless steel autoclave, centrifuge, UV-vis spectrophotometer, PL spectrometer, FT-IR spectrometer, XPS, HRTEM, Keithley 2400 SourceMeter, Zolix SS150 solar simulator.
4:Experimental Procedures and Operational Workflow:
The synthesis involved hydrothermal treatment of the precursor and dopant mixture, followed by centrifugation and filtration. The CQDs were then characterized and used to fabricate QDSCs.
5:Data Analysis Methods:
The morphological and structural characteristics of CQDs were analyzed using HRTEM and XPS. Optical properties were studied using UV-vis and PL spectra. Photovoltaic properties of QDSCs were measured under simulated sunlight.
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XPS
Escalab 250Xi
Thermo Scientific
Conducting XPS measurements of the CQD.
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high-resolution transmission electron microscopy
JEM-2100
JEOL
Characterization of the morphologies of the as-prepared CQDs.
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Teflon-lined stainless steel autoclave
Used for hydrothermal synthesis of CQDs.
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UV-vis spectrophotometer
Persee TU-1901
Obtaining UV-vis spectra of the CQD.
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PL spectrometer
Smart Fluo-QY
Recording PL spectra of the CQD.
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FT-IR spectrometer
Nicolet IS50
Measuring FT-IR spectra of the CQD.
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Keithley 2400 SourceMeter
Measuring the current density–voltage characteristics of the QDSC.
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solar simulator
Zolix SS150
Providing AM1.5 simulated illumination for QDSC testing.
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IPCE measurement system
Zolix Solar Cell Scan 100
Acquiring the incident photon-to-current conversion efficiency of the QDSC.
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cyclic voltammetry system
Chenhua CHI660E
Measuring the energy levels of the CQDs.
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