研究目的
To map charge carrier dynamics at the nanoscale in perovskite solar cells to understand their impact on performance and to identify materials for high-performance solar cells.
研究成果
The study successfully mapped charge carrier dynamics at the nanoscale in perovskite solar cells, revealing significant variations at grain boundaries. Mixed cation perovskites showed improved dynamics at GBs due to reduced trap states and ion migration, suggesting pathways for enhancing solar cell performance.
研究不足
The measurements were conducted in ambient conditions, which could affect the properties of the perovskite materials over time. The study focused on two specific types of perovskites, and the findings may not be generalizable to all perovskite materials.
1:Experimental Design and Method Selection:
Utilized a Transient Photo-response AFM (TP-AFM) to map charge carrier dynamics including recombination lifetime, transport time, and diffusion length at the nanoscale.
2:Sample Selection and Data Sources:
Studied two types of perovskites, single-cation/halide (MAPbI3) and mixed-cation/halide (FAMACs-IBr).
3:List of Experimental Equipment and Materials:
Used Agilent 5500 AFM, Breakout Box (Agilent N9447A), mixed signal oscilloscope (Agilent MSOX4154A), and a green laser (MGL-I-532 DPSS).
4:Experimental Procedures and Operational Workflow:
Performed nanoscale mapping of charge carrier dynamics by synchronizing laser illumination with AFM tip movement, measuring transient photovoltage (TPV) and transient photocurrent (TPC).
5:Data Analysis Methods:
Analyzed TPV and TPC decays to extract recombination lifetime and transport time, respectively, and calculated diffusion length from these parameters.
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