Transport resistance dominates the fill factor losses in record organic solar cells

Fuente: arXiv
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Main Authors: Wang, Chen, MacKenzie, Roderick C. I., Würfel, Uli, Neher, Dieter, Kirchartz, Thomas, Deibel, Carsten, Saladina, Maria
Format: Preprint
Published: 2024
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author Wang, Chen
MacKenzie, Roderick C. I.
Würfel, Uli
Neher, Dieter
Kirchartz, Thomas
Deibel, Carsten
Saladina, Maria
author_facet Wang, Chen
MacKenzie, Roderick C. I.
Würfel, Uli
Neher, Dieter
Kirchartz, Thomas
Deibel, Carsten
Saladina, Maria
contents Organic photovoltaics are a promising solar cell technology well-suited to mass production using roll-to-roll processes. The efficiency of lab-scale solar cells has exceeded 20% and considerable attention is currently being given to understanding and minimising the remaining loss mechanisms preventing higher efficiencies. While recent efficiency improvements are partly owed to reducing non-radiative recombination losses at open-circuit, the low fill factor due to a significant transport resistance is becoming the Achilles heel of organic photovoltaics. The term transport resistance refers to a voltage and light intensity dependent charge collection loss in low-mobility materials. In this Perspective, we demonstrate that even the highest efficiency organic solar cells reported to-date have significant performance losses that can be attributed to transport resistance and that lead to high fill factor losses. We provide a closer look at the transport resistance and the material properties influencing it. We describe how to experimentally characterise and quantify the transport resistance by providing easy to follow instructions. Furthermore, the causes and theory behind transport resistance are detailed. In particular, we integrate the relevant figures of merit and different viewpoints on the transport resistance. Finally, we outline strategies that can be followed to minimise these charge collection losses in future solar cells.
format Preprint
id arxiv_https___arxiv_org_abs_2412_13694
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Transport resistance dominates the fill factor losses in record organic solar cells
Wang, Chen
MacKenzie, Roderick C. I.
Würfel, Uli
Neher, Dieter
Kirchartz, Thomas
Deibel, Carsten
Saladina, Maria
Materials Science
Organic photovoltaics are a promising solar cell technology well-suited to mass production using roll-to-roll processes. The efficiency of lab-scale solar cells has exceeded 20% and considerable attention is currently being given to understanding and minimising the remaining loss mechanisms preventing higher efficiencies. While recent efficiency improvements are partly owed to reducing non-radiative recombination losses at open-circuit, the low fill factor due to a significant transport resistance is becoming the Achilles heel of organic photovoltaics. The term transport resistance refers to a voltage and light intensity dependent charge collection loss in low-mobility materials. In this Perspective, we demonstrate that even the highest efficiency organic solar cells reported to-date have significant performance losses that can be attributed to transport resistance and that lead to high fill factor losses. We provide a closer look at the transport resistance and the material properties influencing it. We describe how to experimentally characterise and quantify the transport resistance by providing easy to follow instructions. Furthermore, the causes and theory behind transport resistance are detailed. In particular, we integrate the relevant figures of merit and different viewpoints on the transport resistance. Finally, we outline strategies that can be followed to minimise these charge collection losses in future solar cells.
title Transport resistance dominates the fill factor losses in record organic solar cells
topic Materials Science
url https://arxiv.org/abs/2412.13694