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Super-Droplet-Repellent Carbon-Based Printable Perovskite Solar Cells.
Mai, Cuc Thi Kim; Halme, Janne; Nurmi, Heikki A; da Silva, Aldeliane M; Lorite, Gabriela S; Martineau, David; Narbey, Stéphanie; Mozaffari, Naeimeh; Ras, Robin H A; Hashmi, Syed Ghufran; Vuckovac, Maja.
Affiliation
  • Mai CTK; Microelectronics Research Unit, Faculty of Information Technology & Electrical Engineering, University of Oulu, Pentti Kaiteran katu 1, Oulu, 90570, Finland.
  • Halme J; Department of Applied Physics, Aalto University School of Science, Konemiehentie 1, Espoo, 02150, Finland.
  • Nurmi HA; Department of Applied Physics, Aalto University School of Science, Konemiehentie 1, Espoo, 02150, Finland.
  • da Silva AM; Centre of Excellence in Life-Inspired Hybrid Materials (LIBER), Aalto University, Espoo, Finland.
  • Lorite GS; Microelectronics Research Unit, Faculty of Information Technology & Electrical Engineering, University of Oulu, Pentti Kaiteran katu 1, Oulu, 90570, Finland.
  • Martineau D; Microelectronics Research Unit, Faculty of Information Technology & Electrical Engineering, University of Oulu, Pentti Kaiteran katu 1, Oulu, 90570, Finland.
  • Narbey S; Solaronix SA, Rue de l' Ouriette 129, Aubonne, CH-1170, Switzerland.
  • Mozaffari N; Solaronix SA, Rue de l' Ouriette 129, Aubonne, CH-1170, Switzerland.
  • Ras RHA; Department of Materials Science and Engineering, Monash University, Clayton, Victoria, 3800, Australia.
  • Hashmi SG; Department of Applied Physics, Aalto University School of Science, Konemiehentie 1, Espoo, 02150, Finland.
  • Vuckovac M; Centre of Excellence in Life-Inspired Hybrid Materials (LIBER), Aalto University, Espoo, Finland.
Adv Sci (Weinh) ; 11(26): e2401016, 2024 Jul.
Article in En | MEDLINE | ID: mdl-38696594
ABSTRACT
Despite attractive cost-effectiveness, scalability, and superior stability, carbon-based printable perovskite solar cells (CPSCs) still face moisture-induced degradation that limits their lifespan and commercial potential. Here, the moisture-preventing mechanisms of thin nanostructured super-repellent coating (advancing contact angle >167° and contact angle hysteresis 7°) integrated into CPSCs are investigated for different moisture forms (falling water droplets vs water vapor vs condensed water droplets). It is shown that unencapsulated super-repellent CPSCs have superior performance under continuous droplet impact for 12 h (rain falling experiments) compared to unencapsulated pristine (uncoated) CPSCs that degrade within seconds. Contrary to falling water droplets, where super-repellent coating serves as a shield, water vapor is found to physisorb through porous super-repellent coating (room temperature and relative humidity, RH 65% and 85%) that increase the CPSCs performance for 21% during ≈43 d similarly to pristine CPSCs. It is further shown that water condensation forms within or below the super-repellent coating (40 °C and RH 85%), followed by chemisorption and degradation of CPSCs. Because different forms of water have distinct effects on CPSC, it is suggested that future standard tests for repellent CPSCs should include rain falling and condensate formation tests. The findings will thus inspire the development of super-repellent coatings for moisture prevention.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Adv Sci (Weinh) Year: 2024 Document type: Article Affiliation country: Finland Country of publication: Germany

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Adv Sci (Weinh) Year: 2024 Document type: Article Affiliation country: Finland Country of publication: Germany