PERFORMANCE OPTIMIZATION OF TIN HALIDE PEROVSKITE SOLAR CELLS VIA NUMERICAL SIMULATION

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PERFORMANCE OPTIMIZATION OF TIN HALIDE PEROVSKITE SOLAR CELLS VIA NUMERICAL SIMULATION

Abstract:
Tin halide perovskite solar cells have emerged as a promising candidate for next-generation photovoltaic technology due to their high efficiency and low-cost fabrication. However, achieving further enhancements in their performance requires a comprehensive understanding of the underlying physics and optimization of device parameters. This abstract presents a study focused on the performance optimization of tin halide perovskite solar cells using numerical simulation techniques.

In this work, a numerical simulation framework is developed to investigate the key factors influencing the performance of tin halide perovskite solar cells. The simulation model incorporates the fundamental physics of charge transport, recombination, and light absorption within the device architecture. By accurately capturing the complex interplay between these factors, the simulation framework provides valuable insights into the performance-limiting mechanisms and opportunities for optimization.

The study employs the numerical simulation framework to explore various device parameters, including perovskite layer thickness, composition, interface engineering, and device architecture. By systematically varying these parameters, the impact on the device performance metrics such as power conversion efficiency, short-circuit current, open-circuit voltage, and fill factor is evaluated. The simulation results reveal the intricate relationships between the device parameters and performance, enabling the identification of optimal design strategies.

Furthermore, the numerical simulations aid in unraveling the underlying physical processes governing the performance of tin halide perovskite solar cells. This includes analyzing the charge carrier distribution, recombination mechanisms, and light absorption profiles within the device. Such insights shed light on the operation principles and enable the development of strategies to mitigate the performance-limiting factors.

The findings from this study provide valuable guidance for the experimental optimization of tin halide perovskite solar cells. By leveraging the information obtained through numerical simulations, researchers and engineers can efficiently design and fabricate devices with improved performance. The presented simulation framework serves as a powerful tool for exploring and optimizing tin halide perovskite solar cells, ultimately contributing to the advancement of sustainable and cost-effective photovoltaic technology.

Keywords: Tin halide perovskite solar cells, numerical simulation, optimization, performance enhancement, device parameters, charge transport, recombination, light absorption.

PERFORMANCE OPTIMIZATION OF TIN HALIDE PEROVSKITE SOLAR CELLS VIA NUMERICAL SIMULATION. GET MORE PHYSICS PROJECT TOPICS AND MATERIALS

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