研究目的
Investigating the reliability and performance variation of triple-junction flexible thin solar cells under electron and proton irradiation for space applications.
研究成果
The study demonstrates that thin InGaP/InGaAs/Ge solar cells combine high specific power, mechanical flexibility, high performance, and strong resistance to particle irradiation, making them an excellent option for space applications. The middle InGaAs subcell is the most radiation-damageable junction, while the top InGaP subcell shows very low irradiation-induced changes.
研究不足
The study focuses on specific types of solar cells and irradiation conditions, which may not cover all possible space application scenarios. The analysis is limited to the effects of electron and proton irradiation.
1:Experimental Design and Method Selection:
The study involves systematic analysis of optical and electrical features of thin solar cells in begin-of-life (BOL) and after irradiation (end-of-life, EOL) by either electrons or protons.
2:Sample Selection and Data Sources:
Samples are CTJ30-80 solar devices, InGaP/InGaAs/Ge triple junction solar cells with a size of
3:5 cm2 and AM0 efficiency class 30%. List of Experimental Equipment and Materials:
Solar simulator WACOM WXS130S, SpeQuest of ReRa Solutions for spectral response measurements, and photoluminescence measurement setups.
4:Experimental Procedures and Operational Workflow:
I–V curves and spectral responses (external quantum efficiency) measurements are accomplished on several BOL and EOL samples.
5:Data Analysis Methods:
The response of each subjunction is tested through EQE measurements, and photoluminescence spectra measurements are carried out to obtain information about the irradiation-induced radiative point defects.
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