研究目的
Investigating the effects of a chemically orthogonal hole transport layer on the performance of colloidal quantum dot solar cells.
研究成果
The development of a chemically orthogonal HTL using malonic acid crosslinking preserves the active layer's surface chemistry and improves charge extraction, leading to a significant enhancement in power conversion efficiency from 12.2% to 13.0%. This work provides insights into designing ideal HTLs for solution-processed optoelectronics.
研究不足
The study focuses on the impact of HTL chemistry on device performance but does not extensively explore the scalability of the fabrication process or the long-term stability under operational conditions beyond 80 days.
The methodology involved the synthesis of OA-capped PbS CQDs, fabrication of MA HTL through ligand exchange, and characterization of the devices using various spectroscopic and electrical measurements. The experimental design included XPS, FTIR, UPS, GISAXS, and conductivity measurements to analyze the surface chemistry, band alignment, interdot spacing, and electrical properties of the HTLs. The performance of the solar cells was evaluated through current-voltage characteristics, EQE spectra, and spatial collection efficiency calculations.
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Keithley 2400
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Keithley
Source measuring unit for current-voltage characteristics
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Thermo Scientific K-Alpha
K-Alpha
Thermo Scientific
XPS measurements
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Thermo Scientific iS50
iS50
Thermo Scientific
FTIR spectra acquisition
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Bruker Dektak XT
Dektak XT
Bruker
Thickness profilometer
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Horiba Fluorolog
Fluorolog
Horiba
Time correlated single photon counting system for photoluminescence measurements
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Horiba UVISEL Plus
UVISEL Plus
Horiba
Spectroscopic ellipsometry
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