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Loss Mechanisms In Non-Fullerene Organic Solar Cells
Linköping University, Department of Physics, Chemistry and Biology, Electronic and photonic materials. Linköping University, Faculty of Science & Engineering.ORCID iD: 0000-0002-9302-4129
2021 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

Photovoltaics are one of the most important sustainable energy sources in the 21st century. Among photovoltaics, organic solar cells (OSCs) offer many advantages such as ease of processing, lightweight, the potential for flexibility, and tunable properties. Its peculiar nature and complexity present a fascinating charm, attracting many researchers. Thanks to researchers' efforts, the power conversion efficiency (PCE) of OSCs has been boosted from 1% to 19% during the last three decades. Despite the exciting PCE, some problems remain to be solved, for example, the large voltage loss and long-term stability. The aim of this thesis is to understand the fundamental physics of the state-of-the-art OSCs, especially the loss mechanism. Ultimately, properly understanding the mechanisms will sever as the basis of OSCs further improvements and commercialization. This work focuses on the loss mechanisms of OSCs, particularly the open-circuit voltage and the fill factor. The beginning of this thesis introduces basic concepts regarding semiconductors physics and donor-acceptor OSCs. This part explains how a photon is used to generate electricity and the fundamentals of organic electronics. Subsequently, the detailed balance in a solar cell is reviewed, which is the basis of voltage loss analysis. In this part, we see how the input, recombination, and output form a balance. Then, the way to determine the voltage loss is shown, and the latest understandings in reducing the loss are reviewed. The fill factor, as a measure of the quality of a solar cell, is a complex parameter, especially in OSCs.The latter part of this thesis starts from the photophysical processes in an OSC, and then relates intrinsic parameters to the fill factor. The figure of merits has been employed to express the fill factor analytically. In the end, experimental methods and basic principles for the previous analysis are introduced, including Fourier transform infrared spectroscopy, the external quantum efficiency of photovoltaics (EQEPV), spectrograph for electroluminescence or photoluminescence, transient absorption, and time-delayed collection field. Overall, the thesis combined thermal dynamics and charge dynamics to analyze voltage losses and fill factor losses. The author hopes this work can contribute to a better understanding of the loss mechanisms OSCs.

Place, publisher, year, edition, pages
Linköping: Linköping University Electronic Press, 2021. , p. 81
Series
Linköping Studies in Science and Technology. Dissertations, ISSN 0345-7524 ; 2173
Keywords [en]
photovoltaics, organic solar cell, non-fullerene, charge recombination, voltage loss, fill factor
National Category
Condensed Matter Physics
Identifiers
URN: urn:nbn:se:liu:diva-178408DOI: 10.3384/diss.diva-178408ISBN: 9789179290344 (print)OAI: oai:DiVA.org:liu-178408DiVA, id: diva2:1586757
Public defence
2021-10-07, TEMCAS, T-building, Campus Valla, Linköping, 10:15 (English)
Opponent
Supervisors
Available from: 2021-09-13 Created: 2021-08-23 Last updated: 2021-09-13Bibliographically approved
List of papers
1. Barrierless Free Charge Generation in the High-Performance PM6:Y6 Bulk Heterojunction Non-Fullerene Solar Cell
Open this publication in new window or tab >>Barrierless Free Charge Generation in the High-Performance PM6:Y6 Bulk Heterojunction Non-Fullerene Solar Cell
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2020 (English)In: Advanced Materials, ISSN 0935-9648, E-ISSN 1521-4095, Vol. 32, article id 1906763Article in journal (Refereed) Published
Abstract [en]

Organic solar cells are currently experiencing a second golden age thanks to the development of novel non-fullerene acceptors (NFAs). Surprisingly, some of these blends exhibit high efficiencies despite a low energy offset at the heterojunction. Herein, free charge generation in the high-performance blend of the donor polymer PM6 with the NFA Y6 is thoroughly investigated as a function of internal field, temperature and excitation energy. Results show that photocurrent generation is essentially barrierless with near-unity efficiency, regardless of excitation energy. Efficient charge separation is maintained over a wide temperature range, down to 100 K, despite the small driving force for charge generation. Studies on a blend with a low concentration of the NFA, measurements of the energetic disorder, and theoretical modeling suggest that CT state dissociation is assisted by the electrostatic interfacial field which for Y6 is large enough to compensate the Coulomb dissociation barrier.

Place, publisher, year, edition, pages
WILEY-V C H VERLAG GMBH, 2020
Keywords
driving force; non-fullerene acceptors; organic solar cells; photocurrent generation
National Category
Theoretical Chemistry
Identifiers
urn:nbn:se:liu:diva-163621 (URN)10.1002/adma.201906763 (DOI)000508921100001 ()31975446 (PubMedID)
Note

Funding Agencies|Alexander von Humboldt FoundationAlexander von Humboldt Foundation; National Natural Science Foundation of ChinaNational Natural Science Foundation of China [21875286]; Swedish Energy Agency EnergimyndighetenSwedish Energy Agency [2016-010174]; BMBF grant InterPhase [FKZ 13N13661, FKZ 13N13656]; MESOMERIE [FKZ 13N13661, FKZ 13N13656]; European Union Horizon 2020 research and innovation program "Widening materials models" [646259]; Sofia Kovalevskaya Award from the Alexander von Humboldt FoundationAlexander von Humboldt Foundation

Available from: 2020-02-17 Created: 2020-02-17 Last updated: 2022-10-06
2. From Generation to Extraction: A Time-Resolved Investigation of Photophysical Processes in Non-fullerene Organic Solar Cells
Open this publication in new window or tab >>From Generation to Extraction: A Time-Resolved Investigation of Photophysical Processes in Non-fullerene Organic Solar Cells
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2020 (English)In: The Journal of Physical Chemistry C, ISSN 1932-7447, E-ISSN 1932-7455, Vol. 124, no 39, p. 21283-21292Article in journal (Refereed) Published
Abstract [en]

Non-fullerene organic solar cells (NFOSCs) demonstrate record efficiencies exceeding 16%. In comparison with cells with the fullerene-based acceptor, the NFOSCs benefit from a longer wavelength absorption, which leads to a small highest occupied molecular orbital (HOMO) level offset. Here, we use several advanced transient investigation techniques, covering timescale from sub-ps to mu s, to address all sequence of processes starting from photoexcitation of donors or acceptors to carrier extraction in several NFOSCs and cells with phenyl-C71-butyric acid methyl ester (PCBM). Though small offsets result in higher open-circuit voltage, we show that at the same time, it limits cell performance because of inefficient hole transfer from excited acceptors to donors and enhanced geminate recombination. We demonstrate that 100 meV HOMO level offset and proper acceptor molecule structures are sufficient for efficient hole transfer (>70%) and for reduction of the geminate recombination losses down to about 20%. Subsequent extraction of unbound charge carriers in all NFOSCs is slightly faster than in cells with PCBM, while non-geminate carrier recombination causing additional losses is slightly slower in the best performing NFOSCs than in cells with PCBM.

Place, publisher, year, edition, pages
AMER CHEMICAL SOC, 2020
National Category
Other Basic Medicine
Identifiers
urn:nbn:se:liu:diva-170971 (URN)10.1021/acs.jpcc.0c05263 (DOI)000577151900007 ()
Available from: 2020-11-01 Created: 2020-11-01 Last updated: 2021-09-13
3. Effect of the Energy Offset on the Charge Dynamics in Nonfullerene Organic Solar Cells
Open this publication in new window or tab >>Effect of the Energy Offset on the Charge Dynamics in Nonfullerene Organic Solar Cells
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2020 (English)In: ACS Applied Materials and Interfaces, ISSN 1944-8244, E-ISSN 1944-8252, Vol. 12, no 39, p. 43984-43991Article in journal (Refereed) Published
Abstract [en]

The energy offset, considered as the driving force for charge transfer between organic molecules, has significant effects on both charge separation and charge recombination in organic solar cells. Herein, we designed material systems with gradually shifting energy offsets, including both positive and negative values. Time-resolved spectroscopy was used to monitor the charge dynamics within the bulk heterojunction. It is striking to find that there is still charge transfer and charge generation when the energy offset reached -0.10 eV (ultraviolet photoelectron spectroscopy data). This work not only indicates the feasibility of the free carrier generation and the following charge separation under the condition of a negative offset but also elucidates the relationship between the charge transfer and the energy offset in the case of polymer chlorination.

Place, publisher, year, edition, pages
AMER CHEMICAL SOC, 2020
Keywords
organic solar cells; negative offset; charge transfer; charge generation; chlorination
National Category
Physical Chemistry
Identifiers
urn:nbn:se:liu:diva-170984 (URN)10.1021/acsami.0c13085 (DOI)000577111700067 ()32885945 (PubMedID)
Note

Funding Agencies|National Natural Science Foundation of China (NSFC)National Natural Science Foundation of China (NSFC) [21734001, 51825301]; China Postdoctoral Science FoundationChina Postdoctoral Science Foundation [BX20190023]; Office of Science, Office of Basic Energy Sciences, of the U.S. Department of EnergyUnited States Department of Energy (DOE) [DE-AC02-05CH11231]

Available from: 2020-11-01 Created: 2020-11-01 Last updated: 2024-01-10

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