研究目的
To develop a new type of microcavity structure with hybrid Au/Ag electrode as mirror and WO3 as spacer layer to achieve colorful ST-OSCs with both high PCE and high peak transmittance.
研究成果
The hybrid-electrode-mirror microcavity structure with WO3 as spacer layer significantly improves both PCE and peak transmittance of ST-OSCs, achieving over 9% PCE and over 25% peak transmittance. The study also demonstrates the use of high-order resonance modes for color tuning, offering a novel approach to fabricate colorful ST-OSCs with high purity and mixed colors.
研究不足
The study focuses on the microcavity-based ST-OSCs with specific materials (PTB7-Th: PC71BM) and structures, which may limit the generalizability to other materials or configurations. The complexity of fabricating the hybrid-electrode-mirror microcavity structure could also pose challenges for large-scale production.
1:Experimental Design and Method Selection:
The study employs a hybrid-electrode-mirror microcavity structure with WO3 as spacer layer to fabricate ST-OSCs. The methodology includes optimizing the thickness of Au and Ag layers to improve PCE and transmittance.
2:Sample Selection and Data Sources:
The active layer consists of PTB7-Th: PC71BM blend, and the devices are fabricated on ITO substrates.
3:List of Experimental Equipment and Materials:
Includes a source meter (Keithley 2400), AM
4:5 solar simulator, Newport power meter, ultraviolet-visible-near-infrared optical spectroscopy, and a four-point-probe measurement stand. Experimental Procedures and Operational Workflow:
The fabrication involves spin-coating ZnO precursor, depositing active layers, and evaporating MoO3, Au, Ag, and WO3 layers under high vacuum.
5:Data Analysis Methods:
The performance is evaluated through J-V characteristics, IPCE spectra, and transmittance spectra analysis.
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