Sensitivity of the Drift-Diffusion Approach in Estimating the Power Conversion Efficiency of Bulk Heterojunction Polymer Solar Cells

There are numerous theoretical approaches to estimating the power conversion efficiency (PCE) of organic solar cells (OSCs), ranging from the empirical approach to calculations based on general considerations of thermodynamics. Depending on the level of abstraction and model assumptions, the accurac...

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Main Authors: Amir Hossein Fallahpour, Aldo Di Carlo, Paolo Lugli
Format: Article
Language:English
Published: MDPI AG 2017-02-01
Series:Energies
Subjects:
Online Access:http://www.mdpi.com/1996-1073/10/3/285
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author Amir Hossein Fallahpour
Aldo Di Carlo
Paolo Lugli
author_facet Amir Hossein Fallahpour
Aldo Di Carlo
Paolo Lugli
author_sort Amir Hossein Fallahpour
collection DOAJ
description There are numerous theoretical approaches to estimating the power conversion efficiency (PCE) of organic solar cells (OSCs), ranging from the empirical approach to calculations based on general considerations of thermodynamics. Depending on the level of abstraction and model assumptions, the accuracy of PCE estimation and complexity of the calculation can change dramatically. In particular, PCE estimation with a drift-diffusion approach (widely investigated in the literature), strongly depends on the assumptions made for the physical models and optoelectrical properties of semiconducting materials. This has led to a huge deviation as well as complications in the analysis of simulated results aiming to understand the factors limiting the performance of OSCs. In this work, we intend to highlight the complex relation between mobility, exciton dynamics, nanoscale dimension, and loss mechanisms in one framework. Our systematic analysis represents key information on the sensitivity of the drift-diffusion approach, to estimate how physical parameters and physical processes bind the PCE of the device under the influence of structure, contact, and material layer properties. The obtained results ultimately led to recommendations for putting effort into certain properties to get the most out of avoidable losses, presented the impact and importance of modification of material properties, and in particular, recommended to what degree the design of new material could improve OSC performance.
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spelling doaj.art-ad6637cd3c9e41b0b99327bcd8899c652022-12-22T02:53:02ZengMDPI AGEnergies1996-10732017-02-0110328510.3390/en10030285en10030285Sensitivity of the Drift-Diffusion Approach in Estimating the Power Conversion Efficiency of Bulk Heterojunction Polymer Solar CellsAmir Hossein Fallahpour0Aldo Di Carlo1Paolo Lugli2Department of Electrical and Computer Engineering, Technical University of Munich, 80333 Munich, GermanyCHOSE—Centre for Hybrid and Organic Solar Energy, Department Electronic Engineering, University of Rome “Tor Vergata”, 00133 Rome, ItalyDepartment of Electrical and Computer Engineering, Technical University of Munich, 80333 Munich, GermanyThere are numerous theoretical approaches to estimating the power conversion efficiency (PCE) of organic solar cells (OSCs), ranging from the empirical approach to calculations based on general considerations of thermodynamics. Depending on the level of abstraction and model assumptions, the accuracy of PCE estimation and complexity of the calculation can change dramatically. In particular, PCE estimation with a drift-diffusion approach (widely investigated in the literature), strongly depends on the assumptions made for the physical models and optoelectrical properties of semiconducting materials. This has led to a huge deviation as well as complications in the analysis of simulated results aiming to understand the factors limiting the performance of OSCs. In this work, we intend to highlight the complex relation between mobility, exciton dynamics, nanoscale dimension, and loss mechanisms in one framework. Our systematic analysis represents key information on the sensitivity of the drift-diffusion approach, to estimate how physical parameters and physical processes bind the PCE of the device under the influence of structure, contact, and material layer properties. The obtained results ultimately led to recommendations for putting effort into certain properties to get the most out of avoidable losses, presented the impact and importance of modification of material properties, and in particular, recommended to what degree the design of new material could improve OSC performance.http://www.mdpi.com/1996-1073/10/3/285solar cellspower conversion efficiency (PCE)modelling and simulationdrift-diffusionorganic semiconductor
spellingShingle Amir Hossein Fallahpour
Aldo Di Carlo
Paolo Lugli
Sensitivity of the Drift-Diffusion Approach in Estimating the Power Conversion Efficiency of Bulk Heterojunction Polymer Solar Cells
Energies
solar cells
power conversion efficiency (PCE)
modelling and simulation
drift-diffusion
organic semiconductor
title Sensitivity of the Drift-Diffusion Approach in Estimating the Power Conversion Efficiency of Bulk Heterojunction Polymer Solar Cells
title_full Sensitivity of the Drift-Diffusion Approach in Estimating the Power Conversion Efficiency of Bulk Heterojunction Polymer Solar Cells
title_fullStr Sensitivity of the Drift-Diffusion Approach in Estimating the Power Conversion Efficiency of Bulk Heterojunction Polymer Solar Cells
title_full_unstemmed Sensitivity of the Drift-Diffusion Approach in Estimating the Power Conversion Efficiency of Bulk Heterojunction Polymer Solar Cells
title_short Sensitivity of the Drift-Diffusion Approach in Estimating the Power Conversion Efficiency of Bulk Heterojunction Polymer Solar Cells
title_sort sensitivity of the drift diffusion approach in estimating the power conversion efficiency of bulk heterojunction polymer solar cells
topic solar cells
power conversion efficiency (PCE)
modelling and simulation
drift-diffusion
organic semiconductor
url http://www.mdpi.com/1996-1073/10/3/285
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