AI Article Synopsis

  • The study addresses the challenge of degradation in organic solar cells (OSCs) by creating a thermally stable multicomponent photoactive layer through a simple one-pot polymerization process.
  • This new layer achieves a high power conversion efficiency of 11.8% while maintaining over 80% of its initial efficiency for more than 1000 hours, showcasing a strong balance between efficiency and durability.
  • The research highlights the importance of specific block polymers in maintaining stable film morphology and effective charge transport during long operation periods, which could lead to more affordable and reliable solar cell technology.

Article Abstract

Degradation of the kinetically trapped bulk heterojunction film morphology in organic solar cells (OSCs) remains a grand challenge for their practical application. Herein, we demonstrate highly thermally stable OSCs using multicomponent photoactive layer synthesized via a facile one-pot polymerization, which show the advantages of low synthetic cost and simplified device fabrication. The OSCs based on multicomponent photoactive layer deliver a high power conversion efficiency of 11.8% and exhibit excellent device stability for over 1000 h (>80% of their initial efficiency retention), realizing a balance between device efficiency and operational lifetime for OSCs. In-depth opto-electrical and morphological properties characterizations revealed that the dominant PM6-b-L15 block polymers with backbone entanglement and the small fraction of PM6 and L15 polymers synergistically contribute to the frozen fine-tuned film morphology and maintain well-balanced charge transport under long-time operation. These findings pave the way towards the development of low-cost and long-term stable OSCs.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9944902PMC
http://dx.doi.org/10.1038/s41467-023-36413-3DOI Listing

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