Login / Signup

Improved Interfacial Electron Dynamics with Block Poly(4-vinylpyridine)-Poly(styrene) Polymers for Efficient and Long-Lasting Dye-Sensitized Solar Cells.

Daniela F S L RodriguesCarlos M R AbreuFrédéric SauvageJorge Fernando Jordão CoelhoArménio Coimbra SerraDzmitry IvanouAdélio M Mendes
Published in: ACS applied polymer materials (2024)
Dye-sensitized solar cells (DSSCs) have recently entered the market for indoor photovoltaics. Fast electron injection from dye to titania, the lifetime of the excited dye, and the suppression of back electron recombination at the photoanode/electrolyte interface are crucial for a high photocurrent conversion efficiency (PCE). This study presents block copolymers of poly(4-vinylpyridine) and poly(styrene)-P4VP 67 - b -PSt x  ( x =23;61) as efficient accelerators of electron injection from dye to titania with extended lifetime excited states and long-lasting back electron recombination suppression. P4VP 67 - b -PSt 23 and P4VP 67 - b -PSt 61 rendered devices with PCEs of 10.0 and 9.8%, respectively, under AM 1.5G light; PCEs of 19.4 and 16.4% under 1000 lx LED light were attained. Copolymers provided a stable PCE with the two most popular I 3 - /3I - electrolytes based on ACN and 3-methoxypropionitrile solvents; PCE history was tracked in the dark and under 1000 h of continuous light soaking with passive load according to ISOS-D1 and ISOS-L2 aging protocols, respectively. The impact of the polymer molecular structure on electron recombination, charge injection, dye anchoring, light absorption, photocurrent generation, and PCE and the long-term history of photovoltaic metrics are discussed.
Keyphrases
  • solar cells
  • highly efficient
  • ionic liquid
  • dna damage
  • dna repair
  • ultrasound guided
  • aqueous solution
  • air pollution
  • electron transfer
  • molecular dynamics simulations
  • energy transfer
  • heavy metals
  • single molecule