A Physics-based Analytical Model for Perovskite Solar Cells
arXiv:1505.05132 · doi:10.1109/JPHOTOV.2015.2451000
Abstract
Perovskites are promising next-generation absorber materials for low-cost and high-efficiency solar cells. Although perovskite cells are configured similar to the classical solar cells, their operation is unique and requires development of a new physical model for characterization, optimization of the cells, and prediction of the panel performance. In this paper, we develop such a physics-based analytical model to describe the operation of different types of perovskite solar cells, explicitly accounting non-uniform generation, carrier selective transport layers, and voltage-dependent carrier collection. The model would allow experimentalists to characterize key parameters of existing cells, understand performance bottlenecks, and predict performance of perovskite-based solar panel - the obvious next step to the evolution of perovskite solar cell technology.
in IEEE Journal of Photovoltaics, 2005
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- An Illumination- and Temperature-Dependent Analytical Model for Copper Indium Gallium Diselenide (CIGS) Solar Cells
- Performance Loss Analysis and Design Space Optimization of Perovskite Solar Cells
- Antimony Chalcogenide-based Solid State Sensitizers for Solar Cells: A Forgotten Hero or Low Potential Candidate
- Towards the maximum efficiency design of a perovskite solar cell by material properties tuning: A multidimensional approach