Loss Mechanism Analyses of Perovskite Solar Cells with an Equivalent Circuit Model
Ting Xu, Zi-Shuai Wang, Xuan-Hua Li, and Wei E. I. Sha

TL;DR
This paper develops an equivalent circuit model based on semiconductor physics to analyze and quantify loss mechanisms in perovskite solar cells, providing insights into efficiency limitations and guiding improvements.
Contribution
The paper introduces a reliable equivalent circuit model that accurately fits experimental data and identifies dominant recombination losses in perovskite solar cells.
Findings
Model fits experimental data with less than 2% error
Identifies dominant recombination mechanisms
Provides a clear visualization of loss contributions
Abstract
Understanding and quantifying the main loss factors affecting the power conversion efficiency of perovskite solar cells are urgently needed. In this work, based on semiconductor physics, the expressions of bulk and surface recombination currents are analytically derived. Then taking the optical loss, series and shunt resistance losses, and bulk and surface recombination losses into consideration, an equivalent circuit model is proposed to describe the current density-voltage characteristics of practical perovskite solar cells. Furthermore, by comparing to the drift-diffusion model, the pre-defined physical parameters of the drift-diffusion model well agree with the fitting parameters retrieved by the equivalent circuit model, which verifies the reliability of the proposed model. Moreover, when the circuit model is applied to analyze experimental results, the fitting outcomes show…
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