Monolithic Perovskite Tandem Solar Cells: A Review of the Present Status and Advanced Characterization Methods Toward 30% Efficiency
Монолитные тандемные солнечные элементы на основе перовскитов: обзор современного состояния и передовых методов характеризации на пути к эффективности 30%
2020-05-04
SCID: 54.1/s5hwd6st
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Advanced characterization methodsMonolithic perovskite tandemsPerovskite/CIGS tandem solar cellsPerovskite/silicon tandem solar cellsPower conversion efficiency
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Abstract (AI)
Abstract Tandem solar cells are the next step in the photovoltaic (PV) evolution due to their higher power conversion efficiency (PCE) potential than currently dominating, but inherently limited, single‐junction solar cells. With the emergence of metal halide perovskite absorber materials, the fabrication of highly efficient tandem solar cells, at a reasonable cost, can significantly impact the future PV landscape. The perovskite‐based tandem solar cells have already shown that they can convert light more efficiently than their standalone sub‐cells. However, to reach PCEs over 30%, several challenges have to be overcome and the understanding of this fascinating technology has to be broadened. In this review, the main scientific and engineering challenges in the field are presented, alongside a discussion of the current status of three main perovskite tandem technologies: perovskite/silicon, perovskite/CIGS, and perovskite/perovskite tandem solar cells. A summary of the advanced structural, electrical, optical, radiative, and electronic characterization methods as well as simulations being utilized for perovskite‐based tandem solar cells is presented. The main findings are summarized and the strength of the techniques to overcome the challenges and gain deeper knowledge for further performance improvement is assessed. Finally, the PCE potential in different experimental and theoretical limits is compared with an aim to shed light on the path towards overcoming the 30% efficiency threshold for all of the three herein reviewed tandem technologies.
Key Findings
1
Achieving efficiencies above 30% requires overcoming major scientific and engineering challenges and deepening understanding of tandem operation.
2
Advanced structural, electrical, optical, radiative, and electronic characterization methods, together with simulations, are assessed for diagnosing limitations and guiding performance improvements.
3
Experimental and theoretical efficiency limits are compared to identify pathways toward exceeding 30% efficiency across the three tandem technologies.
4
Perovskite tandem solar cells offer higher power-conversion-efficiency potential than conventional single-junction photovoltaic cells.
5
Perovskite-based tandems have demonstrated more efficient light conversion than their corresponding standalone sub-cells.
6
The review evaluates the current status of perovskite/silicon, perovskite/CIGS, and perovskite/perovskite tandem technologies.
Research Object
Perovskite-based monolithic tandem solar cells, including perovskite/silicon, perovskite/CIGS, and perovskite/perovskite tandems
Research Subject
The current status, scientific and engineering challenges, characterization methods, simulations, and efficiency potential of perovskite tandem solar cells toward exceeding 30% PCE
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2020-05-04
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