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- W2766367009 abstract "We present a physics-based analytical model for p-i-n and n-i-p configurations of perovskite solar cell incorporating the effect of surface recombination velocities at the transport layers. We use transfer matrix formalism combined with carrier transport equations to derive a unified optoelectronic expression for wavelength-dependent photocurrent. We establish the accuracy of the proposed model by calculating the current–voltage characteristics of both configurations and comparing them with published experimental data. The root-mean-square error in current–voltage characteristics and relative error in the corresponding efficiencies are found to be < 0.3 mA/cm2 and < 3%, respectively, for all configurations. We further illustrate the applicability of our model by analyzing the effect of changing transport layer material, a new layer insertion in the solar cell structures and/or variation of different layers’ thicknesses. We show that the derived expression overcomes the shortcomings of the existing analytical models of perovskite solar cells, which fail to describe the aforementioned effects." @default.
- W2766367009 created "2017-11-10" @default.
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- W2766367009 date "2017-12-01" @default.
- W2766367009 modified "2023-10-06" @default.
- W2766367009 title "Transfer Matrix Formalism-Based Analytical Modeling and Performance Evaluation of Perovskite Solar Cells" @default.
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- W2766367009 doi "https://doi.org/10.1109/ted.2017.2763091" @default.
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