4.7 Article

Optimized Stoichiometry for CuCrO2 Thin Films as Hole Transparent Layer in PBDD4T-2F:PC70BM Organic Solar Cells

期刊

NANOMATERIALS
卷 11, 期 8, 页码 -

出版社

MDPI
DOI: 10.3390/nano11082109

关键词

organic photovoltaics; organic solar cells; OPV; transparent conductive oxides; PEDOT; PSS substitution; out of stoichiometry CuCrO2 thin films; hybrid solar cells; metal oxides based HTL; material stability issues and remedies

资金

  1. French Ministry of Higher Education and Research
  2. Centre of Excellence of Multifunctional Architectured Materials CEMAM - Investments for the Future Program [ANR-10-LABX-44-01]
  3. Agence Nationale de la Recherche (ANR, France) [ANR-17-CE05-0034]
  4. CNRS [FR 2542]
  5. Grenoble INP [FR 2542]
  6. UGA [FR 2542]
  7. Lisboa2020 Programme, Centro 2020 programme, Portugal 2020, European Social Fund [LISBOA-05-3559-FSE-000007, CENTRO-04-3559-FSE-000094]
  8. Agence Nationale de la Recherche (ANR) [ANR-17-CE05-0034] Funding Source: Agence Nationale de la Recherche (ANR)

向作者/读者索取更多资源

The performance and stability of organic photovoltaic devices in atmospheric conditions can be enhanced by integrating CuCrO2 films as an alternative to the commonly used PEDOT:PSS. The optimal composition of the Cu-rich films was found to be in the 60-70% range, balancing transparency, resistivity, and energy bands alignment. Solar cells utilizing CuCrO2 films grown with a Cu solution composition of 65% achieved a power conversion efficiency of 3.1%, demonstrating improved optoelectronic properties compared to other candidates.
The performance and stability in atmospheric conditions of organic photovoltaic devices can be improved by the integration of stable and efficient photoactive materials as substituent of the chemically unstable poly (3,4-ethylene dioxythiophene):polystyrene sulfonate (PEDOT:PSS), generally used as organic hole transport layer. Promising candidates are p-type transparent conductive oxides, which combine good optoelectronic and a higher mechanical and chemical stability than the organic counterpart. In this work, we synthesize Cu-rich CuCrO2 thin films by aerosol-assisted chemical vapour deposition as an efficient alternative to PEDOT:PSS. The effect of stoichiometry on the structural, electrical, and optical properties was analysed to find a good compromise between transparency, resistivity, and energy bands alignment, to maximize the photovoltaic performances., Average transmittance and bandgap are reduced when increasing the Cu content in these out of stoichiometry CuCrO2 films. The lowest electrical resistivity is found for samples synthesized from a solution composition in the 60-70% range. The optimal starting solution composition was found at 65% of Cu cationic ratio corresponding to a singular point in Hackee's figure of merit of 1 x 10(-7) ohm(-1). PBDD4T-2F:PC70BM organic solar cells were fabricated by integrating CuCrO2 films grown from a solution composition ranging between 40% to 100% of Cu as hole transport layers. The solar cells integrating a film grown with a Cu solution composition of 65% achieved a power conversion efficiency as high as 3.1%, representing the best trade-off of the optoelectronic properties among the studied candidates. Additionally, despite the efficiencies achieved from CuCrO2-based organic solar cells are still inferior to the PEDOT:PSS counterpart, we demonstrated a significant enhancement of the lifetime in atmospheric conditions of optimal oxides-based organic photovoltaic devices.

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