4.8 Article

Cyclopentadiene-Based Hole-Transport Material for Cost-Reduced Stabilized Perovskite Solar Cells with Power Conversion Efficiencies Over 23%

Journal

ADVANCED ENERGY MATERIALS
Volume 11, Issue 30, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/aenm.202003953

Keywords

Cyclopentadiene acetals; hole transport materials; long-term stability; perovskite solar cells; X-ray structure analysis

Funding

  1. China Scholarship Council
  2. King Abdulaziz City for Science and Technology (KACST)
  3. European Union's Horizon 2020 research and innovation program [826013]
  4. German Science Foundation (DFG) [ME-1247/37-1]
  5. cluster Quantum Matter and Materials (QM2) at the University of Cologne
  6. Projekt DEAL
  7. H2020 Societal Challenges Programme [826013] Funding Source: H2020 Societal Challenges Programme

Ask authors/readers for more resources

The development of a structurally novel molecular HTM, CPDA 1, based on a common cyclopentadiene core leads to highly efficient and low-cost synthesis, with excellent optoelectronic, thermal, and transport properties. This contributes to achieving high efficiencies of 23.1% in solar cells and improving the long-term stability of PSCs.
Hole transport materials (HTM) are an important component in perovskite solar cells (PSC). Despite a multitude of HTMs developed in recent years, only few of them lead to solar cells with efficiencies over 20%. Therefore, it is still a challenge to develop high-performing HTMs, which have ideal energy levels of the frontier orbitals, are highly efficient in transporting charges, and stabilize the solar cell at the same time. In this work, the development of a structurally novel molecular HTM, CPDA 1, is described which is based on a common cyclopentadiene core and can be efficiently and inexpensively synthesized from readily available starting materials, which is important for future realization of low-cost photovoltaics on larger scale. Due to excellent optoelectronic, thermal, and transport properties, CPDA 1 not only meets the envisioned properties by reaching high efficiencies of 23.1%, which is among the highest reported to date, but also contributes to a respectable long-term stability of the PSCs.

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