Transport resistance strikes back: unveiling its impact on fill factor losses in organic solar cells
Транспортное сопротивление наносит ответный удар: раскрытие его влияния на потери фактора заполнения в органических солнечных элементах
2025-02-04
SCID: 54.1/sq75wk3b
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charge recombinationenergetic disorderfill factor lossesorganic solar cellstransport resistance
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Abstract (AI)
The fill factor (FF) is a critical parameter for solar cell efficiency, but its analytical description is challenging due to the interplay between recombination and charge extraction processes. A significant factor contributing toFFlosses, beyond recombination, that has not received much attention is the influence of charge transport. In most state-of-the-art organic solar cells, the primary limitations of theFFdo not just arise from non-radiative recombination, but also from low conductivity of the organic semiconductors. A closer look reveals that even in the highest efficiency cells, performance losses due to transport resistance are significant. This finding highlights the need for refined models to predict theFFaccurately. Here, we extend the analytical model for transport resistance to a more general case by incorporating energetic disorder. We introduce a straightforward set of equations to predict theFFof a solar cell, enabling the differentiation of losses attributed to recombination and transport resistance. Our analytical model is validated with a large set of experimental current-voltage and light intensity-dependent open-circuit voltage data for a wide range of temperatures. Based on our findings, we provide valuable insights into strategies for mitigatingFFlosses, guiding the development of more efficient solar cell designs and optimisation strategies.
Key Findings
1
A concise equation set separates fill-factor losses caused by recombination from those caused by transport resistance.
2
Charge-transport resistance significantly contributes to fill-factor losses in state-of-the-art organic solar cells, alongside non-radiative recombination.
3
Even the highest-efficiency organic solar cells exhibit substantial performance losses caused by the low conductivity of organic semiconductors.
4
The analytical model is validated against extensive experimental current-voltage and light-intensity-dependent open-circuit-voltage data across a wide temperature range.
5
The study extends an analytical transport-resistance model by incorporating energetic disorder, enabling more general fill-factor predictions.
Research Object
organic solar cells
Research Subject
the impact of charge-transport resistance and energetic disorder on fill-factor losses, including the separation of recombination and transport contributions
Publication Details
Publication Date
2025-02-04
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