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Pushing the limit of Cs incorporation into FAPbBr 3 perovskite to enhance solar cells performances

  • Albertus A. Sutanto
  • , Valentin I.E. Queloz
  • , Inés Garcia-Benito
  • , Kari Laasonen
  • , Berend Smit
  • , Mohammad Khaja Nazeeruddin
  • , Olga A. Syzgantseva*
  • , Giulia Grancini
  • *Corresponding author for this work
  • Ècole Polytechnique Fédérale de Lausanne

Research output: Contribution to journalArticleScientificpeer-review

40 Citations (Scopus)
243 Downloads (Pure)

Abstract

Cation compositional engineering has revealed a powerful design tool to manipulate the perovskite structural and optoelectronic characteristics with a tremendous impact on device performances. Tuning the bandgap by cation and anion compositional mixing, for instance, is paramount to target different optoelectronic segments, from light emitting applications to tandem solar cells. However, structural and photo instabilities, and phase segregation come along, imposing a severe control on the material composition and structure. Here we develop highly uniform alloy of mixed cation FA (1-x) Cs x PbBr 3 perovskite thin films pushing for the first time the Cs content up to 30%. In contrast to what has been reported so far, this composition leads to a high quality crystalline film, maintaining a single cubic phase arrangement. In addition, a remarkably high robustness against moisture and phase purity is observed. The experimental finding is also supported by density functional theory simulations, demonstrating at the atomistic level Cs segregation starting from Cs concentration around 37.5%. Beyond that, phase segregation happens, leading to formation of an unstable pure Cs-rich region. Low temperature photoluminescence (PL) measurements reveal that the addition of Cs eliminates the non-radiative channel into mid-gap traps, as evident by the lack of the broad emission band, often associated with recombination of self-trapped exciton, present for 0% Cs. This, in turn, reduces the non-radiative recombination losses which manifests as high performance solar cells. Indeed, when embodied in solar devices, Cs incorporation leads to enhanced device performances, with an open circuit voltage beyond 1.33 V.

Original languageEnglish
Article number041110
Number of pages6
JournalAPL Materials
Volume7
Issue number4
DOIs
Publication statusPublished - 1 Apr 2019
MoE publication typeA1 Journal article-refereed

Funding

We acknowledge PRACE for awarding access to Curie at GENCI@CEA, France, and Irene at GENCI@CEA, France. We acknowledge the Swiss National Science Foundation (SNSF) funding through the Ambizione Energy Project No. 646 HYPER (Grant No. PZENP2173641) and though the Synergia Grant EPISODE (Grant No. CRSII5_171000). The research of O.A.S. was supported by the European Research Council (ERC) under the European Union’s Horizon 2020 research and innovation programme (Grant Agreement No. 666983, MaGic). We acknowledge Professor Raffaella Buonsanti 652 for the use of the Fluorolog system for the data reported in Fig. 3. We acknowledge Dr. Iwan Zimmermann for the EDS measurement.

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

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