Thermally‐Induced Degradation in PM6:Y6‐Based Bulk Heterojunction Organic Solar Cells

Author:

Alam Shahidul1ORCID,Aldosari Haya12ORCID,Petoukhoff Christopher E.1ORCID,Váry Tomáš3,Althobaiti Wejdan1ORCID,Alqurashi Maryam1ORCID,Tang Hua1ORCID,Khan Jafar I.14ORCID,Nádaždy Vojtech56ORCID,Müller‐Buschbaum Peter78ORCID,Welch Gregory C.9ORCID,Laquai Frédéric1ORCID

Affiliation:

1. KAUST Solar Center (KSC) Physical Sciences and Engineering Division (PSE) Material Science and Engineering Program (MSE) King Abdullah University of Science and Technology (KAUST) Thuwal 23955–6900 Saudi Arabia

2. Department of Physics College of Science Imam Abdulrahman Bin Faisal University P.O. Box 383 Dammam 31113 Saudi Arabia

3. Faculty of Electrical Engineering and Information Technology Slovak University of Technology Bratislava 812 19 Slovakia

4. Department of Physics School of Natural Sciences University of Hull Hull HU6 7RX UK

5. Institute of Physics Slovak Academy of Sciences Dúbravská cesta 9 Bratislava 845 11 Slovakia

6. Centre for Advanced Material Application Slovak Academy of Sciences Dúbravská cesta 9 Bratislava 845 11 Slovakia

7. Heinz Maier‐Leibnitz Zentrum (MLZ) Technical University of Munich Lichtenbergstr. 1 85748 Garching Germany

8. TUM School of Natural Sciences Department of Physics Chair for Functional Materials Technical University of Munich James‐Franck‐Str. 1 85748 Garching Germany

9. Department of Chemistry University of Calgary 731 Campus Place N.W. Canada

Abstract

AbstractThermally induced degradation of organic photovoltaic devices hinders the commercialization of this emerging PV technology. Thus, a precise understanding of the origin of thermal device instability, as well as identifying strategies to circumvent degradation is of utmost importance. Here, it investigates thermally‐induced degradation of state‐of‐the‐art PBDB‐T‐2F (PM6):BTP (Y6) bulk heterojunction solar cells at different temperatures and reveal changes of their optical properties, photophysics, and morphology. The open‐circuit voltage and fill factor of thermally degraded devices are limited by dissociation and charge collection efficiency differences, while the short‐circuit current density is only slightly affected. Energy‐resolved electrochemical impedance spectroscopy measurements reveal that thermally degraded samples exhibit a higher energy barrier for the charge‐transfer state to charge‐separated state conversion. Furthermore, the field dependence of charge generation, recombination, and extraction are studied by time‐delayed collection field and transient photocurrent and photovoltage experiments, indicating significant bimolecular recombination limits device performance. Finally, coupled optical‐electrical device simulations are conducted to fit the devices’ current‐voltage characteristics, enabling us to find useful correlations between optical and electrical properties of the active layers and device performance parameters.

Funder

King Abdullah University of Science and Technology

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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