SUMMARY Tuning bulk heterojunctions is an important step for improving organic photovoltaic device performance; however, challenges remain in obtaining sufficient device lifetimes using this concept. In this work, we report on high-performance PM6/Y7 layer-by-layer organic photovoltaic devices by carefully tuning the layer-by-layer structure and studying the effects on device performance. We demonstrate that an optimized layer-by-layer organic photovoltaic can effectively improve the photophysical properties of the device, resulting in a conversion efficiency of 16.21%, surpassing the bulk heterojunction counterpart. Notably, the developed layer-by-layer device also outperforms the traditional bulk heterojunction in terms of long-term photostability and thermal stability under continuous illumination and temperature stress (85 C) for approximately 1,000 h, with similar results obtained for eight other non-fullerene acceptor systems. The improved longterm photostability and thermal stability in these layer-by-layer systems is ascribed to a mitigation of the

Bilayer layer-by-layer structures for enhanced efficiency and stability of organic photovoltaics beyond bulk heterojunctions

Paci B.;Di Carlo A.
;
2024

Abstract

SUMMARY Tuning bulk heterojunctions is an important step for improving organic photovoltaic device performance; however, challenges remain in obtaining sufficient device lifetimes using this concept. In this work, we report on high-performance PM6/Y7 layer-by-layer organic photovoltaic devices by carefully tuning the layer-by-layer structure and studying the effects on device performance. We demonstrate that an optimized layer-by-layer organic photovoltaic can effectively improve the photophysical properties of the device, resulting in a conversion efficiency of 16.21%, surpassing the bulk heterojunction counterpart. Notably, the developed layer-by-layer device also outperforms the traditional bulk heterojunction in terms of long-term photostability and thermal stability under continuous illumination and temperature stress (85 C) for approximately 1,000 h, with similar results obtained for eight other non-fullerene acceptor systems. The improved longterm photostability and thermal stability in these layer-by-layer systems is ascribed to a mitigation of the
2024
Istituto di Struttura della Materia - ISM - Sede Roma Tor Vergata
organic photovoltaics
File in questo prodotto:
File Dimensione Formato  
Cell Reports Physical Science 2024.pdf

accesso aperto

Descrizione: Articolo pubblicato
Tipologia: Versione Editoriale (PDF)
Licenza: Creative commons
Dimensione 4.76 MB
Formato Adobe PDF
4.76 MB Adobe PDF Visualizza/Apri

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/510353
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 2
  • ???jsp.display-item.citation.isi??? 2
social impact